TLC220X_08 TI | Alldatasheet
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TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 1POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 /C0068B Grade Is 100% Tested for Noise 30 nV/√Hz Max at f = 10 Hz 12 nV/√Hz Max at f = 1 kHz /C0068Low Input Offset Voltage. . . 500 mV Max /C0068Excellent Offset Voltage Stability With Temperature. . . 0.5 mV/°C Typ /C0068Rail-to-Rail Output Swing /C0068Low Input Bias Current 1 pA Typ at TA = 25°C /C0068Common-Mode Input Voltage Range Includes the Negative Rail /C0068Fully Specified For Both Single-Supply and Split-Supply Operation
description
The TLC220x, TLC220xA, TLC220xB, and TLC220xY are precision, low-noise operational amplifiers using Texas Instruments Advanced LinCMOS process. These devices combine the noise performance of the lowest-noise JFET amplifiers with the dc precision available previously only in bipolar amplifiers. The Advanced LinCMOS process uses silicon-gate technology to obtain input offset voltage stability with temperature and time that far exceeds that obtainable using metal-gate technology. In addition, this technology makes possible input impedance levels that meet or exceed levels offered by top-gate JFET and expensive dielectric-isolated devices. The combination of excellent dc and noise performance with a common-mode input voltage range that includes the negative rail makes these devices an ideal choice for high-impedance, low-level signal-conditioning applications in either single-supply or split-supply configurations. The device inputs and outputs are designed to withstand –100-mA surge currents without sustaining latch-up. In addition, internal ESD-protection circuits prevent functional failures at voltages up to 2000 V as tested under MIL-PRF-38535, Method 3015.2; however, care should be exercised in handling these devices as exposure to ESD may result in degradation of the parametric performance. The C-suffix devices are characterized for operation from 0°C to 70°C. The I-suffix devices are characterized for operation from –40°C to 85°C. The M-suffix devices are characterized for operation over the full military temperature range of –55°C to 125°C. Advanced LinCMOS is a trademark of Texas Instruments Incorporated. Copyright 1997, Texas Instruments Incorporated On products compliant to MIL-PRF-38535, all parameters are tested unless otherwise noted. On all other products, production processing does not necessarily include testing of all parameters. PRODUCTION DATA information is current as of publication date. Products conform to specifications per the terms of Texas Instruments standard warranty. Production processing does not necessarily include testing of all parameters. 1 10 100 Vn – Equivalent Input Noise Voltage – nV/ Hz f – Frequency – Hz TYPICAL EQUIVALENT INPUT NOISE VOLTAGE vs FREQUENCY 1 k 10 k VDD = 5 V R S = 20 W TA = 25°C HzV n Please be aware that an important notice concerning availability, standard warranty, and use in critical applications of Texas Instruments semiconductor products and disclaimers thereto appears at the end of this data sheet.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
2 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
AT 25°C Vnmax f = 10 Hz AT 25°C Vnmax f = 1 kHz AT 25°C SMALL OUTLINE † (D) CHIP CARRIER (FK) CERAMIC DIP (JG) PLASTIC DIP (P) CHIP FORM ‡ (Y) 0°C 200 mV 35 nV/√Hz 15 nV/√Hz TLC2201ACD TLC2201ACP0 C to 200 mV 200 mV 35 nV/√Hz 30 nV/√Hz 15 nV/√Hz 12 nV/√Hz TLC2201ACD TLC2201BCD — — TLC2201ACP TLC2201BCP TLC2201Y 70°C m 500 mV — — TLC2201CD TLC2201CP –40°C 200 mV 35 nV/√Hz 15 nV/√Hz TLC2201AID TLC2201AIP40 C to 200 mV 200 mV 35 nV/√Hz 30 nV/√Hz 15 nV/√Hz 12 nV/√Hz TLC2201AID TLC2201BID — — TLC2201AIP TLC2201BIP — 85°C m 500 mV — — TLC2201ID TLC2201IP –55°C 200 mV 35 nV/√Hz 15 nV/√Hz TLC2201AMD TLC2201AMFK TLC2201AMJG TLC2201AMP to m 200 mV 35 nV/√Hz 30 nV/√Hz 15 nV/√Hz 12 nV/√Hz TLC2201BMD TLC2201BMFK TLC2201BMJG TLC2201BMP — 125°C 500 mV — — TLC2201MD TLC2201MFK TLC2201MJG TLC2201MP † The D packages are available taped and reeled. Add R suffix to device type (e.g. TLC220xBCDR). ‡ Chip forms are tested at 25°C only. TLC2202 AVAILABLE OPTIONS V max V max PACKAGED DEVICES CHIP TA VIOmax AT 25°C Vnmax f = 10 Hz AT 25°C Vnmax f = 1 kHz AT 25°C SMALL OUTLINE † (D) CHIP CARRIER (FK) CERAMIC DIP (JG) PLASTIC DIP (P) CHIP FORM ‡ (Y) 500 mV 30 nV/√Hz 12 nV/√Hz TLC2202BCD — — TLC2202BCP 0°C to 70°C 500 mV 500 mV 30 nV/√Hz 35 nV/√Hz 12 nV/√Hz 15 nV/√Hz TLC2202BCD TLC2202ACD — — TLC2202BCP TLC2202ACP TLC2202Y 1 mV — — TLC2202CD — — TLC2202CP 500 mV 30 nV/√Hz 12 nV/√Hz TLC2202BID — — TLC2202BIP –40°C to 85°C 500 mV 500 mV 30 nV/√Hz 35 nV/√Hz 12 nV/√Hz 15 nV/√Hz TLC2202BID TLC2202AID — — TLC2202BIP TLC2202AIP — 1 mV — — TLC2202ID — — TLC2202IP 500 mV 30 nV/√Hz 12 nV/√Hz TLC2202BMD TLC2202BMFK TLC2202BMJG TLC2202BMP –55°C to 125°C 500 mV 500 mV 30 nV/√Hz 35 nV/√Hz 12 nV/√Hz 15 nV/√Hz TLC2202BMD TLC2202AMD TLC2202BMFK TLC2202AMFK TLC2202BMJG TLC2202AMJG TLC2202BMP TLC2202AMP — 1 mV — — TLC2202MD TLC2202MFK TLC2202MJG TLC2202MP † The D packages are available taped and reeled. Add R suffix to device type (e.g. TLC220xBCDR). ‡ Chip forms are tested at 25°C only.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 3POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 NC NC 1OUT 1IN– 1IN+ VDD– /GND NC NC NC VDD+ 2OUT 2IN– 2IN+ NC 1OUT 1IN– 1IN+ VDD– /GND VDD+ 2OUT 2IN– 2IN+ NC – No internal connection 3212 0 1 9 91 0 1 1 1 2 1 3 NC 2OUT NC 2IN– NC NC 1IN– NC 1IN+ NC NC 1OUT NC NC NC NC NC 2IN+ DD+V DD –V /GND NC IN– IN+ VDD– /GND NC VDD+ OUT NC3 2 1 20 19 91 0 1 1 1 2 1 3 NC VDD+ NC OUT NC NC IN– NC IN+ NC NC NC NC NC NC NC NC DD – V NC NC /GND TLC2201 FK PACKAGE (TOP VIEW) TLC2202 D PACKAGE (TOP VIEW) TLC2202 JG OR P PACKAGE (TOP VIEW) TLC2202 FK PACKAGE (TOP VIEW) TLC2201 D, JG, OR P PACKAGE (TOP VIEW)
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
4 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
equivalent schematic (each amplifier) IN + IN – Q3 Q6 Q9 Q12 Q14 Q16 Q13 Q15 Q17 Q7 Q8 Q10 Q11 Q2 Q5 Q1 Q4 R1 R2 VDD+ VDD– /GND OUT ACTUAL DEVICE COMPONENT COUNT COMPONENT TLC2201 TLC2202 Transistors 17 34 Resistors 2 2 Diodes 1 4 Capacitors 1 2
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 5POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2201Y chip information This chip, when properly assembled, displays characteristics similar to the TLC2201C. Thermal compression or ultrasonic bonding may be used on the doped-aluminum bonding path. Chips may be mounted with conductive epoxy or a gold-silicon preform. BONDING PAD ASSIGNMENTS CHIP THICKNESS: 15 MILS TYPICAL BONDING PADS: 4 × 4 MILS MINIMUM TJmax = 150°C TOLERANCES ARE ± 10%. ALL DIMENSIONS ARE IN MILS. PIN (4) IS INTERNALLY CONNECTED TO BACK SIDE OF CHIP. TERMINAL NUMBERS ARE FOR THE D, JG, AND P PACKAGES. OUT IN– IN+ VDD+ (7)(2) (3) (6) (4) VDD– (2) (3) (4) (6)(7)(8) (1)
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
6 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
This chip, when properly assembled, displays characteristics similar to the TLC2202C. Thermal compression or ultrasonic bonding may be used on the doped-aluminum bonding pads. Chips may be mounted with conductive epoxy or a gold-silicon preform. BONDING PAD ASSIGNMENTS CHIP THICKNESS: 15 MILS TYPICAL BONDING PADS: 4 × 4 MILS MINIMUM TJmax = 150°C TOLERANCES ARE ± 10%. ALL DIMENSIONS ARE IN MILS. PIN (4) IS INTERNALLY CONNECTED TO BACKSIDE OF CHIP. 1OUT 1IN+ 1IN– VDD+ (8) (6) (3) (2) (5) (1) +(7) 2IN+ 2IN– 2OUT (4) VDD– 100 (1) (2) (3) (4) (5) (6)(7)(8)
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 7POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 absolute maximum ratings over operating free-air temperature range (unless otherwise noted)† † Stresses beyond those listed under “absolute maximum ratings” may cause permanent damage to the device. These are stress ratings only, and functional operation of the device at these or any other conditions beyond those indicated under “recommended operating conditions” is not implied. Exposure to absolute-maximum-rated conditions for extended periods may affect device reliability. NOTES: 1. All voltage values except differential voltages are with respect to the midpoint between VDD+ and VDD– . 2. Differential voltages are at IN+ with respect to IN–. 3. The output may be shorted to either supply. Temperature and/or supply voltages must be limited to ensure that the maximum dissipation rating in not exceeded. DISSIPATION RATING TABLE PACKAGE TA ≤ 25°C DERATING FACTOR TA = 70°C TA = 85°C TA = 125°CPACKAGE A POWER RATING ABOVE T A = 25°C A POWER RATING A POWER RATING A POWER RATING D–8 725 mW 5.8 mW/°C 464 mW 377 mW 145 mW D–14 950 mW 7.6 mW/ °C 608 mW 494 mW 190 mW FK 1375 mW 11.0 mW/ °C 880 mW 715 mW 275 mW JG 1050 mW 8.4 mW/ °C 672 mW 546 mW 210 mW P 1000 mW 8.0 mW/°C 640 mW 520 mW 200 mW recommended operating conditions C SUFFIX I SUFFIX M SUFFIX UNIT MIN MAX MIN MAX MIN MAX UNIT Supply voltage, VDD ± ± 2.3 ± 8 ± 2.3 ± 8 ± 2.3 ± 8 V Common-mode input voltage, VIC VDD– VDD+ –2.3 VDD– VDD+ –2.3 VDD– VDD+ –2.3 V Operating free-air temperature, TA 0 70 –40 85 –55 125 °C
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
8 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2201C electrical characteristics at specified free-air temperature, VDD ± = ± 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2201C UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT VIO Input offset voltage 25°C 100 500 mVVIO Input offset voltage Full range 600 mV a VIO Tem perature coefficient of input offset voltage Full range 05 mV/°Ca VIO Temperature coefficient of input offset voltage Full range 0.5 mV/°C Input offset voltage long-term drift (see Note 4)VIC =0 R S =5 0W 25°C 0.001 0.005 mV/mo IIO Input offset current VIC = 0, R S = 50 W 25°C 0.5 pAIIO Input offset current Full range 100 pA IIB Input bias current 25°C 1 pAIIB Input bias current Full range 100 pA VICR Common-mode input voltage range R S = 50 W Full range to VICR gg S g 2.7 VOM Maximum positivepeak output voltage swing 25°C 4.7 4.8 VVOM+ Ma ximum positive peak output voltage sw ing R L =1 0kW Full range 4.7 V VOM Maximum negativepeak output voltage swing R L = 10 kW 25°C –4.7 –4.9 VVOM– Ma ximum negative peak output voltage sw ing Full range –4.7 V VO = ± 4V R L = 500 kW 25°C 400 560 AVD Large signal differential voltage amplification VO = ± 4 V, R L = 500 kW Full range 300 V/mVAVD Large-signal differential voltage amplification VO = ± 4V R L =1 0kW 25°C 90 100 V/mV VO = ± 4 V, R L = 10 kW Full range 70 CMRR Common mode rejection ratio VIC = VICRmin, VO = 0, Full range 85 dBCMRR Common -mode rejection ratio IC ICR , R S = 50 W O , Full range 85 dB kSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD ± = ± 23Vt o ± 8V 25°C 90 110 dBkSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD ± = ± 2.3 V to ± 8 V Full range 85 dB IDD Supply current VO =0 No load 25°C 1.1 1.5 mAIDD Supply current VO = 0, No load Full range 1.5 mA † Full range is 0°C to 70°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2201C operating characteristics at specified free-air temperature, VDD ± = ± 5 V PARAMETER TEST CONDITIONS TA † TLC2201C UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT SR Slew rate at unity gain VO = ± 2.3 V, R L = 10 kW , 25°C 2 2.7 V/msSR Slew rate at unity gain C L = 100 pF Full range 1.5 V/ms V Equivalent input noise voltage f = 10 Hz 25°C 18 nV/√HzVn Equivalent input noise voltage f = 1 kHz 25°C 8 nV/√H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 25°C 0.5 mVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 25°C 0.7 mV In Equivalent input noise current 25°C 0.6 fA/√Hz Gain bandwidthproduct f = 10 kHz, R L = 10 kW , 25°C 19 MHzGain-bandw idth product C L = 100 pF L 25°C 1.9 MH z fm Phase margin at unity gain R L = 10 kW , C L = 100 pF 25°C 48° † Full range is 0°C to 70°C.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 9POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2201C electrical characteristics at specified free-air temperature, VDD ± = ± 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2201AC TLC2201BC UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 80 200 80 200 mVVIO Input offset voltage Full range 300 300 mV a VIO Temperature coefficient of input offset voltage Full range 0.5 0.5 mV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, R S = 50 W 25°C 0.001 0.005 0.001 0.005 mV/mo IIO Input offset current 25°C 0.5 0.5 pAIIO Input offset current Full range 100 100 pA IIB Input bias current 25°C 1 1 pAIIB Input bias current Full range 100 100 pA VICR Common-mode input voltage range R S = 50 W Full range –5 to 2.7 –5 to 2.7 V VOM Maximum positive peak output 25°C 4.7 4.8 4.7 4.8 VVOM+ voltage swing R L =1 0kW Full range 4.7 4.7 V VOM Maximum negative peak output R L = 10 kW VVOM– g voltage swing Full range –4.7 –4.7 V VO = ± 4V R L = 500 kW 25°C 400 560 400 560 AVD Large-signal differential voltage VO = ± 4 V, R L = 500 kW Full range 300 300 V/mVAVD gg g amplification VO = ± 4V R L =1 0kW 25°C 90 100 90 100 V/mV VO = ± 4 V, R L = 10 kW Full range 70 70 CMRR Common mode rejection ratio VIC = VICRmin, 25°C 90 115 90 115 dBCMRR Common -mode rejection ratio VO = 0, R S = 50 W Full range 85 85 dB kSVR Supply voltage rejection ratioVDD ± = ± 23Vt o ± 8V 25°C 90 110 90 110 dBkSVR yg j (DVDD ± /DVIO) VDD ± = ± 2.3 V to ± 8 V Full range 85 85 dB IDD Supply current VO =0 No load 25°C 1.1 1.5 1.1 1.5 mAIDD Supply current VO = 0, No load Full range 1.5 1.5 mA † Full range is 0°C to 70°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
10 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2201C operating characteristics at specified free-air temperature, VDD ± = ± 5 V PARAMETER TEST CONDITIONS TA † TLC2201AC TLC2210BC UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT SR Slew rate at unity gain VO = ± 2.3 V, R L = 10 kW , 25°C 2 2.7 2 2.7 V/msSR Slew rate at unity gain O , C L = 100 pF Full range 1.5 1.5 V/ms V Equivalent input noise volt-f = 10 Hz 25°C 18 35 18 30 nV/√HzVn q age (see Note 5) f = 1 kHz 25°C 8 15 8 12 nV/√H z VN(PP) Peak-to-peak equivalent inputf = 0.1 to 1 Hz 25°C 0.5 0.5 mVVN(PP) q noise voltage f = 0.1 to 10 Hz 25°C 0.7 0.7 mV In Equivalent input noise current 25°C 0.6 0.6 fA/√Hz Gain bandwidthproduct f = 10 kHz, R L = 10 kW, 25°C 19 19 MHzGain-bandw idth product , C L = 100 pF L 25°C 1.9 1.9 MH z fm Phase margin at unity gainR L = 10 kW , C L = 100 pF 25°C 48° 48° † Full range is 0°C to 70°C. NOTE 5: This parameter is tested on a sample basis for the TLC2201A and on all devices for the TLC2201B. For other test requirements, please contact the factory. This statement has no bearing on testing or nontesting of other parameters.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 11POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2201C electrical characteristics at specified free-air temperature, VDD = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2201C UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT VIO Input offset voltage 25°C 100 500 mVVIO Input offset voltage Full range 600 mV a VIO Temperature coefficient of input offset voltage Full range 0.5 mV/°C Input offset voltage long-term drift (see Note 4) VIC =0 R S =5 0W 25°C 0.001 0.005 mV/mo IIO Input offset current VIC = 0, R S = 50 W 25°C 0.5 pAIIO Input offset current Full range 100 pA IIB Input bias current 25°C 1 pAIIB Input bias current Full range 100 pA VICR Common-mode input voltage range R S = 50 W Full range to VICR gg S g 2.7 VOH Maximum high level output voltage R L =1 0kW 25°C 4.7 4.8 VVOH Ma ximum high-level output voltage R L = 10 kW Full range 4.7 V VOL Maximum low level output voltage IO =0 25°C 0 50 mVVOL Ma ximum low-level output voltage IO = 0 Full range 50 mV VO = 1 V to 4 V, 25°C 150 315 AVD Large signal differential voltage amplification O , R L = 500 kW Full range 100 V/mVAVD Large-signal differential voltage amplification VO = 1 V to 4 V, 25°C 25 55 V/mV O , R L = 10 kW Full range 15 CMRR Common mode rejection ratio VIC = VICRmin, VO = 0, 25°C 90 110 dBCMRR Common -mode rejection ratio IC ICR , R S = 50 W O , Full range 85 dB kSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD =46Vt o1 6V 25°C 90 110 dBkSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD = 4.6 V to 16 V Full range 85 dB IDD Supply current VO =25V No load 25°C 1 1.5 mAIDD Supply current VO = 2.5 V, No load Full range 1.5 mA † Full range is 0°C to 70°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2201C operating characteristics at specified free-air temperature, VDD = 5 V PARAMETER TEST CONDITIONS TA † TLC2201C UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT SR Slew rate at unity gain VO = 0.5 V to 2.5 V, 25°C 1.8 2.5 V/msSR Slew rate at unity gain R L = 10 kW , C L = 100 pF Full range 1.3 V/ms V Equivalent input noise voltage f = 10 Hz 25°C 18 nV/√HzVn Equivalent input noise voltage f = 1 kHz 25°C 8 nV/√H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 25°C 0.5 mVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 25°C 0.7 mV In Equivalent input noise current 25°C 0.6 fA/√Hz Gain bandwidthproduct f = 10 kHz, R L = 10 kW , 25°C 18 MHzGain-bandw idth product C L = 100 pF L 25°C 1.8 MH z fm Phase margin at unity gain R L = 10 kW , C L = 100 pF 25°C 45° † Full range is 0°C to 70°C.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
12 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2201C electrical characteristics at specified free-air temperature, VDD = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2201AC TLC2201BC UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 80 200 80 200 mVVIO Input offset voltage Full range 300 300 mV a VIO Temperature coefficient of Full range 05 05 mV/°Ca VIO input offset voltage Full range 0.5 0.5 mV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, R S = 50 W 25°C 0.001 0.005 0.001 0.005 mV/mo IIO Input offset current 25°C 0.5 0.5 pAIIO Input offset current Full range 100 100 pA IIB Input bias current 25°C 1 1 pAIIB Input bias current Full range 100 100 pA VICR Common-mode input voltage R S =5 0W Full range 0 to 0 to VVICR g range R S = 50 W Full range 2.7 2.7 V VOH Maximum high-level output R L =1 0kW 25°C 4.7 4.8 4.7 4.8 VVOH g voltage R L = 10 kW Full range 4.7 4.7 V VOL Maximum low-level output IO =0 25°C 0 50 0 50 mVVOL voltage IO = 0 Full range 50 50 mV VO = 1 V to 4 V, 25°C 150 315 150 315 AVD Large-signal differential O , R L = 500 kW Full range 100 100 V/mVAVD gg voltage amplification VO = 1 V to 4 V, 25°C 25 55 25 55 V/mV O , R L = 10 kW Full range 15 15 CMRR Common mode rejection ratio VIC = VICRmin, 25°C 90 110 90 110 dBCMRR Common -mode rejection ratio VO = 0, R S = 50 W Full range 85 85 dB kSVR Supply voltage rejection ratioVDD =46Vt o1 6V 25°C 90 110 90 110 dBkSVR yg j (DVDD ± /DVIO) VDD = 4.6 V to 16 V Full range 85 85 dB IDD Supply current VO =25V No load 25°C 1 1.5 1 1.5 mAIDD Supply current VO = 2.5 V, No load Full range 1.5 1.5 mA † Full range is 0°C to 70°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 13POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2201C operating characteristics at specified free-air temperature, VDD = 5 V PARAMETER TEST CONDITIONS TA † TLC2201AC TLC2210BC UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT SR Slew rate at unity gain V/msSR Slew rate at unity gain R L = 10 kW , C L = 100 pF Full range 1.3 1.3 V/ms V Equivalent input noise voltagef = 10 Hz 25°C 18 35 18 30 nV/√HzVn qg (see Note 5) f = 1 kHz 25°C 8 15 8 12 nV/√H z VN(PP) Peak-to-peak equivalent inputf = 0.1 to 1 Hz 25°C 0.5 0.5 mVVN(PP) q noise voltage f = 0.1 to 10 Hz 25°C 0.7 0.7 mV In Equivalent input noise current 25°C 0.6 0.6 fA/√Hz Gain-bandwidth product f = 10 kHz, C L = 100 pF R L = 10 kW, 25°C 1.8 1.8 MHz fm Phase margin at unity gainR L = 10 kW , C L = 100 pF 25°C 45° 45° † Full range is 0°C to 70°C. NOTE 5: This parameter is tested on a sample basis for the TLC2201A and on all devices for the TLC2201B. For other test requirements, please contact the factory. This statement has no bearing on testing or nontesting of other parameters.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
14 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2202C electrical characteristics at specified free-air temperature, VDD ± = ± 5 V (unless otherwise specified) PARAMETER TEST CONDITIONS TA † TLC2202C UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT VIO Input offset voltage 25°C 100 1000 mVVIO Input offset voltage VIC =0 R S =5 0W Full range 1150 mV a VIO Temperature coefficient of input offset voltage VIC = 0, R S = 50 W Full range 0.5 mV/°C Input offset voltage long-term drift (see Note 4) 25°C 0.001 0.005 mV/mo IIO Input offset current 25°C 0.5 IIO Input offset current VIC =0 R S =5 0W Full range 100 pA IIB Input bias current VIC = 0, R S = 50 W 25°C 1 pA IIB Input bias current Full range 100 VICR Common-mode input voltage range R S = 50 W Full range to VICR gg S g 2.7 VOM Maximum positivepeak output voltage swing 25°C 4.7 4.8 VOM+ Ma ximum positive peak output voltage sw ing R L =1 0kW Full range 4.7 V VOM Maximum negativepeak output voltage swing R L = 10 kW 25°C –4.7 –4.9 VOM– Ma ximum negative peak output voltage sw ing Full range –4.7 V VO = ± 4V R L = 500 kW 25°C 300 560 AVD Large signal differential voltage amplification VO = ± 4 V, R L = 500 kW Full range 200 V/mVAVD Large-signal differential voltage amplification VO = ± 4V R L =1 0kW 25°C 50 100 V/mV VO = ± 4 V, R L = 10 kW Full range 25 CMRR Common mode rejection ratio VO = 0, V IC = VICRmin, 25°C 80 115 dBCMRR Common -mode rejection ratio O , IC ICR , R S = 50 W Full range 80 dB kSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD ± = ± 23Vt o ± 8V 25°C 80 110 dBkSVR Supply-voltage rejection ratio (DVDD ± /DVIO) VDD ± = ± 2.3 V to ± 8 V Full range 80 dB IDD Supply current VO =0 No load 25°C 1.8 2.7 mAIDD Supply current VO = 0, No load Full range 2.7 mA † Full range is 0°C to 70°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2202C operating characteristics at specified free-air temperature, VDD ± = ± 5 V PARAMETER TEST CONDITIONS TA † TLC2202C UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT SR Slew rate at unity gain VO = ± 2.3 V, R L = 10 kW , 25°C 1.8 2.7 V/msSR Slew rate at unity gain O , C L = 100 pF L , Full range 1.3 V/ms V Equivalent input noise voltage f = 10 Hz 25°C 18 nV/√HzVn Equivalent input noise voltage f = 1 kHz 25°C 8 nV/√H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 25°C 0.5 mVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 25°C 0.7 mV In Equivalent input noise current 25°C 0.6 fA/√Hz Gain bandwidthproduct f = 10 kHz, R L = 10 kW , 25°C 19 MHzGain-bandw idth product , C L = 100 pF L , 25°C 1.9 MH z fm Phase margin at unity gain R L = 10 kW , C L = 100 pF 25°C 48° † Full range is 0°C to 70°C.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 15POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2202C electrical characteristics at specified free-air temperature, VDD ± = ± 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2202AC TLC2202BC UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 80 500 80 500 mVVIO In ut offset voltage Full range 650 650 mV a VIO Temperature coefficient VIC =0 R S =5 0W Full range 05 05 mV/°Ca VIO of input offset voltage VIC = 0, R S = 50 W Full range 0.5 0.5 mV/°C Input offset voltage long-term drift (see Note 4) 25°C 0.001 0.005 0.001 0.005 mV/mo IIO Input offset current 25°C 0.5 0.5 pAIIO In ut offset current VIC =0 R S =5 0W Full range 100 100 A IIB Input bias current VIC = 0, R S = 50 W 25°C 1 1 pAIIB In ut bias current Full range 100 100 A Common mode input voltage –5 –5 VICR Common -mode input voltage range R S = 50 W Full range to to Vrange 2.7 2.7 VOM Maximum positive peak 25°C 4.7 4.8 4.7 4.8 VVOM + output voltage swing R L =1 0kW Full range 4.7 4.7 V VOM Maximum negative peak R L = 10 kW g output voltage swing Full range –4.7 –4.7 V VO = ± 4V R L = 500 kW 25°C 300 560 300 560 AVD Large-signal differential VO = ± 4 V, R L = 500 kW Full range 200 200 V/mVAVD gg voltage amplification VO = ± 4V R L =1 0kW 25°C 50 100 50 100 V/mV VO = ± 4 V, R L = 10 kW Full range 25 25 CMRR Common-mode rejection ratioVIC = VICRmin, 25°C 80 115 80 115 dBCMRR Common -mode rejection ratio IC ICR VO = 0, R S = 50 W Full range 80 80 dB kSVR Supply-voltage rejection ratioVDD ± = ± 23Vt o ± 8V 25°C 80 110 80 110 dBkSVR yg j (DVDD ± /DVIO) VDD ± = ± 2.3 V to ± 8 V Full range 80 80 dB † Full range is 0°C to 70°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2202C operating characteristics at specified free-air temperature, VDD ± = ± 5 V PARAMETER TEST CONDITIONS TA † TLC2202AC TLC2202BC UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT V ± 23V 25°C 18 27 18 27 V/msSR Slew rate at unity gain O R L = 10 kW ,C L = 100 pF Full range 1.3 1.3 V/ms Vn Equivalent input noise voltagef = 10 Hz 25°C 18 35 18 30 nV/√HzVn qg (see Note 5) f = 1 kHz 25°C 8 15 8 12 nV/√Hz VN(PP) Peak-to-peak equivalent inputf = 0.1 to 1 Hz 25°C 0.5 0.5 mVVN(PP) q noise voltage f = 0.1 to 10 Hz 25°C 0.7 0.7 mV In Equivalent input noise current 25°C 0.6 0.6 fA/√Hz f=1 0k H z RL =1 0kWGain-bandwidth product f = 10 kHz, R L = 10 kW , C L 100 pF 25°C 1.9 1.9 MHzC L = 100 pF fm Phase margin at unity gainR L =1 0kW C L = 100pF 25°C 48° 48°fm Phase margin at unity gain R L = 10 kW , C L = 100 F 25°C 48° 48° † Full range is 0°C to 70°C. NOTE 5: This parameter is tested on a sample basis for the TLC2202A and on all devices for the TLC2202B. For other test requirements, please contact the factory. This statement has no bearing on testing or nontesting of other parameters.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
16 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2202C electrical characteristics at specified free-air temperature, VDD = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2202C UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT VIO Input offset voltage 25°C 100 1000 mVVIO Input offset voltage VIC =0 R S =5 0W Full range 1150 mV a VIO Temperature coefficient of input offset voltage VIC = 0, R S = 50 W Full range 0.5 mV/°C Input offset voltage long-term drift (see Note 4) 25°C 0.001 0.005 mV/mo IIO Input offset current Full range 100 IIB Input bias current VIC = 0, R S = 50 W 25°C 1 pA IIB Input bias current Full range 100 VICR Common-mode input voltage range R S = 50 W Full range to VICR gg S g 2.7 VOH Maximum high level output voltage R L =1 0kW 25°C 4.7 4.8 VVOH Ma ximum high-level output voltage R L = 10 kW Full range 4.7 V VOL Maximum low level output voltage IO =0 25°C 0 50 mVVOL Ma ximum low-level output voltage IO = 0 Full range 50 mV VO =1 V to 4 V, 25°C 150 315 AVD Large signal differential voltage amplification O , R L = 500 kW Full range 100 V/mVAVD Large-signal differential voltage amplification VO = 1 V to 4 V, 25°C 25 55 V/mV O , R L = 10 kW Full range 15 CMRR Common mode rejection ratio VO = 0, V IC = VICRmin, 25°C 75 110 dBCMRR Common -mode rejection ratio O , IC ICR , R S = 50 W Full range 75 dB kSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD =46Vt o1 6V 25°C 80 110 dBkSVR Supply-voltage rejection ratio (DVDD ± /DVIO) VDD = 4.6 V to 16 V Full range 80 dB IDD Supply current VO =0 No load 25°C 1.7 2.6 mAIDD Supply current VO = 0, No load Full range 2.6 mA † Full range is 0°C to 70°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2202C operating characteristics at specified free-air temperature, VDD = 5 V PARAMETER TEST CONDITIONS TA † TLC2202C UNITPARAMETER TEST CONDITIONS MIN TYP MAX UNIT SR Slew rate at unity gain VO = 0.5 V to 2.5 V, 25°C 1.6 2.5 V/msSR Slew rate at unity gain O , R L = 10 kW ,C L = 100 pF Full range 1.1 V/ms V Equivalent input noise voltage f = 10 Hz 25°C 18 nV/√HzVn Equivalent input noise voltage f = 1 kHz 25°C 8 nV/√H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 25°C 0.5 mVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 25°C 0.7 mV In Equivalent input noise current 25°C 0.6 fA/√Hz Gain bandwidthproduct f = 10 kHz, R L = 10 kW , 25°C 19 MHzGain-bandw idth product , C L = 100 pF L , 25°C 1.9 MH z fm Phase margin at unity gain R L = 10 kW , C L = 100 pF 25°C 47° † Full range is 0°C to 70°C.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 17POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2202C electrical characteristics at specified free-air temperature, VDD = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2202AC TLC2202BC UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 80 500 80 500 mVVIO In ut offset voltage Full range 650 650 mV a VIO Temperature coefficient VIC =0 R S =5 0W Full range 05 05 mV/°Ca VIO of input offset voltage VIC = 0, R S = 50 W Full range 0.5 0.5 mV/°C Input offset voltage long-term drift (see Note 4) 25°C 0.001 0.005 0.001 0.005 mV/mo IIO Input offset current 25°C 0.5 0.5 pAIIO In ut offset current VIC =0 R S =5 0W Full range 100 100 A IIB Input bias current VIC = 0, R S = 50 W 25°C 1 1 pAIIB In ut bias current Full range 100 100 A Common mode input 0 0 VICR Common -mode input voltage range R S = 50 W Full range to to Vvoltage range 2.7 2.7 VOH Maximum high-level R L =1 0kW 25°C 4.7 4.8 4.7 4.8 VVOH g output voltage R L = 10 kW Full range 4.7 4.7 V VOL Maximum low-level IO =0 25°C 0 50 0 50 mVVOL output voltage IO = 0 Full range 50 50 mV VO = 1 V to 4 V, 25°C 150 315 150 315 AVD Large-signal differential O R L = 500 kW Full range 100 100 V/mVAVD gg voltage amplification VO = 1 V to 4 V, 25°C 25 55 25 55 V/mV O R L = 10 kW Full range 15 15 CMRR Common-mode rejection ratioVIC = VICRmin, 25°C 75 110 75 110 dBCMRR Common -mode rejection ratio IC ICR VO = 0, R S = 50 W Full range 75 75 dB kSVR Supply-voltage rejection ratioVDD =46Vt o1 6V 25°C 80 110 80 110 dBkSVR yg j (DVDD ± /DVIO) VDD = 4.6 V to 16 V Full range 80 80 dB Full range 2.6 2.6 mA † Full range is 0°C to 70°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2202C operating characteristics at specified free-air temperature, VDD = 5 V PARAMETER TEST CONDITIONS TA † TLC2202AC TLC2202BC UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT V 05Vt o25V 25°C 16 25 16 25 V/msSR Slew rate at unity gain O R L = 10 kW ,C L = 100 pF Full range 1.1 1.1 V/ms Vn Equivalent input noise voltagef = 10 Hz 25°C 18 35 18 30 nV/√HzVn qg (see Note 5) f = 1 kHz 25°C 8 15 8 12 nV/√Hz VN(PP) Peak-to-peak equivalent inputf = 0.1 to 1 Hz 25°C 0.5 0.5 mVVN(PP) q noise voltage f = 0.1 to 10 Hz 25°C 0.7 0.7 mV In Equivalent input noise current 25°C 0.6 0.6 fA/√Hz f=1 0k H z RL =1 0kWGain-bandwidth product f = 10 kHz, R L = 10 kW , C 100 pF 25°C 1.9 1.9 MHzC L = 100 pF fm Phase margin at unity gainR L =1 0kW C L = 100pF 25°C 47° 47°fm Phase margin at unity gain R L = 10 kW , C L = 100 F 25°C 47° 47° † Full range is 0°C to 70°C. NOTE 5: This parameter is tested on a sample basis for the TLC2202A and on all devices for the TLC2202B. For other test requirements, please contact the factory. This statement has no bearing on testing or nontesting of other parameters.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
18 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2201I electrical characteristics at specified free-air temperature, VDD ± = ± 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2201I UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT VIO Input offset voltage 25°C 100 500 mVVIO Input offset voltage Full range 650 mV a VIO Tem perature coefficient of input offset voltage Full range 05 mV/°Ca VIO Temperature coefficient of input offset voltage Full range 0.5 mV/°C Input offset voltage long-term drift (see Note 4)VIC =0 R S =5 0W 25°C 0.001 0.005 mV/mo IIO Input offset current VIC = 0, R S = 50 W 25°C 0.5 pAIIO Input offset current Full range 150 pA IIB Input bias current 25°C 1 pAIIB Input bias current Full range 150 pA VICR Common-mode input voltage range R S = 50 W Full range to VICR gg S g 2.7 VOM Maximum positivepeak output voltage swing 25°C 4.7 4.8 VVOM+ Ma ximum positive peak output voltage sw ing R L =1 0kW Full range 4.7 V VOM Maximum negativepeak output voltage swing R L = 10 kW 25°C –4.7 –4.9 VVOM– Ma ximum negative peak output voltage sw ing Full range –4.7 V VO = ± 4V R L = 500 kW 25°C 400 560 AVD Large signal differential voltage amplification VO = ± 4 V, R L = 500 kW Full range 250 V/mVAVD Large-signal differential voltage amplification VO = ± 4V R L =1 0kW 25°C 90 100 V/mV VO = ± 4 V, R L = 10 kW Full range 65 CMRR Common mode rejection ratio VIC = VICRmin, 25°C 90 115 dBCMRR Common -mode rejection ratio VO = 0, R S = 50 W Full range 85 dB kSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD ± = ± 23Vt o ± 8V 25°C 90 110 dBkSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD ± = ± 2.3 V to ± 8 V Full range 85 dB IDD Supply current VO =0 No load 25°C 1.1 1.5 mAIDD Supply current VO = 0, No load Full range 1.5 mA † Full range is –40°C to 85°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2201I operating characteristics at specified free-air temperature, VDD ± = ± 5 V PARAMETER TEST CONDITIONS TA † TLC2201I UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT SR Slew rate at unity gain VO = ± 2.3 V, R L = 10 kW , 25°C 2 2.7 V/msSR Slew rate at unity gain O , C L = 100 pF Full range 1.4 V/ms V Equivalent input noise voltage f = 10 Hz 25°C 18 nV/√HzVn Equivalent input noise voltage f = 1 kHz 25°C 8 nV/√H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 25°C 0.5 mVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 25°C 0.7 mV In Equivalent input noise current 25°C 0.6 fA/√Hz Gain bandwidthproduct f = 10 kHz, R L = 10 kW , 25°C 19 MHzGain-bandw idth product C L = 100 pF L 25°C 1.9 MH z fm Phase margin at unity gain R L = 10 kW , C L = 100 pF 25°C 48° † Full range is –40°C to 85°C.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 19POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2201I electrical characteristics at specified free-air temperature, VDD ± = ± 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2201AI TLC2210BI UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 80 200 80 200 mVVIO Input offset voltage Full range 350 350 mV a VIO Temperature coefficient of input Full range 05 05 mV/°Ca VIO offset voltage Full range 0.5 0.5 mV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, R S = 50 W 25°C 0.001 0.005 0.001 0.005 mV/mo IIO Input offset current 25°C 0.5 0.5 pAIIO Input offset current Full range 150 150 pA IIB Input bias current 25°C 1 1 pAIIB Input bias current Full range 150 150 pA Common-mode input voltage –5 to –5 toVICR Common -mode in ut voltage range R S = 50 W Full range –5 to –5 to 27 VICR range S g 2.7 2.7 VOM Maximum positive peak output 25°C 4.7 4.8 4.7 4.8 VVOM+ voltage swing R L =1 0kW Full range 4.7 4.7 V VOM Maximum negative peak output R L = 10 kW VVOM– g voltage swing Full range –4.7 –4.7 V VO = ± 4V R L = 500 kW 25°C 400 560 400 560 AVD Large-signal differential voltage VO = ± 4 V, R L = 500 kW Full range 250 250 V/mVAVD gg g amplification VO = ± 4V R L =1 0kW 25°C 90 100 90 100 V/mV VO = ± 4 V, R L = 10 kW Full range 65 65 CMRR Common mode rejection ratio VIC = VICRmin, 25°C 90 115 90 115 dBCMRR Common -mode rejection ratio VO = 0, R S = 50 W Full range 85 85 dB kSVR Supply voltage rejection ratioVDD ± = ± 23Vt o ± 8V 25°C 90 110 90 110 dBkSVR yg j (DVDD ± /DVIO) VDD ± = ± 2.3 V to ± 8 V Full range 85 85 dB IDD Supply current VO =0 No load 25°C 1.1 1.5 1.1 1.5 mAIDD Supply current VO = 0, No load Full range 1.5 1.5 mA † Full range is –40°C to 85°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150 °C extrapolated to TA = 25°C using the Arrhenius equation assuming an activation energy of 0.96 eV.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
20 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2201I operating characteristics at specified free-air temperature, VDD ± = ± 5 V PARAMETER TEST CONDITIONS TA † TLC2201AI TLC2210BI UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT SR Slew rate at unity gain VO = ± 2.3 V, 25°C 2 2.7 2 2.7 V/msSR Slew rate at unity gain R L = 10 kW , C L = 100 pF Full range 1.4 1.4 V/ms V Equivalent input noise voltagef = 10 Hz 25°C 18 35 18 30 nV/√HzVn qg (see Note 5) f = 1 kHz 25°C 8 15 8 12 nV/√Hz VN(PP) Peak-to-peak equivalent inputf = 0.1 to 1 Hz 25°C 0.5 0.5 mVVN(PP) q noise voltage f = 0.1 to 10 Hz 25°C 0.7 0.7 mV In Equivalent input noise current 25°C 0.6 0.6 fA/√Hz Gain bandwidthproduct f = 10 kHz, R L = 10 kW, 25°C 19 19 MHzGain-bandw idth product C L = 100 pF 25°C 1.9 1.9 MH z fm Phase margin at unity gainR L = 10 kW , C L = 100 pF 25°C 48° 48° † Full range is –40°C to 85°C. NOTE 5: This parameter is tested on a sample basis for the TLC2201A and on all devices for the TLC2201B. For other test requirements, please contact the factory. This statement has no bearing on testing or nontesting of other parameters.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 21POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2201I electrical characteristics at specified free-air temperature, VDD = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2201I UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT VIO Input offset voltage 25°C 100 500 mVVIO Input offset voltage Full range 650 mV a VIO Temperature coefficient of input offset voltage Full range 0.5 mV/°C Input offset voltage long-term drift (see Note 4) VIC =0 R S =5 0W 25°C 0.001 0.005 mV/mo IIO Input offset current VIC = 0, R S = 50 W 25°C 0.5 pAIIO Input offset current Full range 150 pA IIB Input bias current 25°C 1 pAIIB Input bias current Full range 150 pA VICR Common-mode input voltage range R S = 50 W Full range to VICR gg S g 2.7 VOH Maximum high level output voltage R L =1 0kW 25°C 4.7 4.8 VVOH Ma ximum high-level output voltage R L = 10 kW Full range 4.7 V VOL Maximum low level output voltage IO =0 25°C 0 50 mVVOL Ma ximum low-level output voltage IO = 0 Full range 50 mV VO = 1 V to 4 V, 25°C 150 315 AVD Large signal differential voltage amplification O , R L = 500 kW Full range 100 V/mVAVD Large-signal differential voltage amplification VO = 1 V to 4 V, 25°C 25 55 V/mV O , R L = 10 kW Full range 15 CMRR Common mode rejection ratio VIC = VICRmin, 25°C 90 110 dBCMRR Common -mode rejection ratio VO = 0, R S = 50 W Full range 85 dB kSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD =46Vt o1 6V 25°C 90 110 dBkSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD = 4.6 V to 16 V Full range 85 dB IDD Supply current VO =25V No load 25°C 1 1.5 mAIDD Supply current VO = 2.5 V, No load Full range 1.5 mA † Full range is –40°C to 85°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2201I operating characteristics at specified free-air temperature, VDD = 5 V PARAMETER TEST CONDITIONS TA † TLC2201I UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT SR Slew rate at unity gain VO = 0.5 V to 2.5 V, 25°C 1.8 2.5 V/msSR Slew rate at unity gain R L = 10 kW ,, C L = 100 pF Full range 1.2 V/ms V Equivalent input noise voltage f = 10 Hz 25°C 18 nV/√HzVn Equivalent input noise voltage f = 1 kHz 25°C 8 nV/√H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 25°C 0.5 mVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 25°C 0.7 mV In Equivalent input noise current 25°C 0.6 fA/√Hz Gain bandwidthproduct f = 10 kHz, R L = 10 kW , 25°C 18 MHzGain-bandw idth product C L = 100 pF L 25°C 1.8 MH z fm Phase margin at unity gain R L = 10 kW , C L = 100 pF 25°C 45° † Full range is –40°C to 85°C.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
22 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2201I electrical characteristics at specified free-air temperature, VDD = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2201AI TLC2201BI UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 80 200 80 200 mAVIO In ut offset voltage Full range 350 350 mA a VIO Temperature coefficient of Full range 05 05 mV/°Ca VIO input offset voltage Full range 0.5 0.5 mV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, R S = 50 W 25°C 0.001 0.005 0.001 0.005 mV/mo IIO Input offset current 25°C 0.5 0.5 pAIIO In ut offset current Full range 150 150 A IIB Input bias current 25°C 1 1 pAIIB In ut bias current Full range 150 150 A Common mode input voltage 0 0 VICR Common -mode input voltage range R S = 50 W Full range to to Vrange 2.7 2.7 VOH Maximum high-level output R L =1 0kW 25°C 4.7 4.8 4.7 4.8 VVOH g voltage R L = 10 kW Full range 4.7 4.7 V VOL Maximum low-level output IO =0 25°C 0 50 0 50 mVVOL voltage IO = 0 Full range 50 50 mV VO = 1 V to 4 V, 25°C 150 315 150 315 AVD Large-signal differential O R L = 500 kW Full range 100 100 V/mVAVD gg voltage amplification VO = 1 V to 4 V, 25°C 25 55 25 55 V/mV O R L = 10 kW Full range 15 15 CMRR Common-mode rejection ratioVIC = VICRmin, 25°C 90 110 90 110 dBCMRR Common -mode rejection ratio VO = 0, R S = 50 W Full range 85 85 dB kSVR Supply voltage rejection ratioVDD =46Vt o1 6V 25°C 90 110 90 110 dBkSVR yg j (DVDD ± /DVIO) VDD = 4.6 V to 16 V Full range 85 85 dB † Full range is –40°C to 85°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 23POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2201I operating characteristics at specified free-air temperature, VDD = 5 V PARAMETER TEST CONDITIONS TA † TLC2201AI TLC2210BI UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT SR Slew rate at unity gain V/msSR Slew rate at unity gain R L = 10 kW , C L = 100 pF Full range 1.2 1.2 V/ms V Equivalent input noise f = 10 Hz 25°C 18 35 18 30 nV/√HzVn q voltage (see Note 5) f = 1 kHz 25°C 8 15 8 12 nV/√H z VN(PP) Peak-to-peak equivalent inputf = 0.1 to 1 Hz 25°C 0.5 0.5 mVVN(PP) q noise voltage f = 0.1 to 10 Hz 25°C 0.7 0.7 mV In Equivalent input noise current 25°C 0.6 0.6 fA/√Hz Gain bandwidthproduct f = 10 kHz, R L = 10 kW, 25°C 18 18 MHzGain-bandw idth product , C L = 100 pF L 25°C 1.8 1.8 MH z f Phase margin at unity gainR L =1 0kW C L = 100pF 25°C 45° 45°fm Phase margin at unity gain R L = 10 kW , C L = 100 pF 25°C 45° 45° † Full range is –40°C to 85°C. NOTE 5: This parameter is tested on a sample basis for the TLC2201A and on all devices for the TLC2201B. For other test requirements, please contact the factory. This statement has no bearing on testing or nontesting of other parameters.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
24 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2202I electrical characteristics at specified free-air temperature, VDD ± = ±5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2202I UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT VIO Input offset voltage 25°C 100 1000 mVVIO Input offset voltage VIC =0 R S =5 0W Full range 1200 mV a VIO Temperature coefficient of input offset voltage VIC = 0, R S = 50 W Full range 0.5 mV/°C Input offset voltage long-term drift (see Note 4) 25°C 0.001 0.005 mV/mo IIO Input offset current Full range 150 IIB Input bias current VIC = 0, R S = 50 W 25°C 1 pA IIB Input bias current Full range 150 VICR Common-mode input voltage range R S = 50 W Full range to VICR gg S g 2.7 VOM Maximum positivepeak output voltage swing 25°C 4.7 4.8 VOM+ Ma ximum positive peak output voltage sw ing R L =1 0kW Full range 4.7 V VOM Maximum negativepeak output voltage swing R L = 10 kW 25°C –4.7 –4.9 VOM– Ma ximum negative peak output voltage sw ing Full range –4.7 V VO = ± 4V R L = 500 kW 25°C 300 560 AVD Large signal differential voltage amplification VO = ± 4 V, R L = 500 kW Full range 150 V/mVAVD Large-signal differential voltage amplification VO = ± 4V R L =1 0kW 25°C 50 100 V/mV VO = ± 4 V, R L = 10 kW Full range 25 CMRR Common mode rejection ratio VO = 0, V IC = VICRmin, 25°C 80 115 dBCMRR Common -mode rejection ratio O , IC ICR , R S = 50 W Full range 80 dB kSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD = ± 23Vt o ± 8V 25°C 80 110 dBkSVR Supply-voltage rejection ratio (DVDD ± /DVIO) VDD = ± 2.3 V to ± 8 V Full range 80 dB IDD Supply current VO =0 No load 25°C 1.8 2.7 mAIDD Supply current VO = 0, No load Full range 2.7 mA † Full range is –40°C to 85°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2202I operating characteristics at specified free-air temperature, VDD ± = ± 5 V PARAMETER TEST CONDITIONS TA † TLC2202I UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT SR Slew rate at unity gain VO = ± 2.3 V, R L = 10 kW , 25°C 1.8 2.7 V/msSR Slew rate at unity gain O , C L = 100 pF L , Full range 1.2 V/ms V Equivalent input noise voltage f = 10 Hz 25°C 18 nV/√HzVn Equivalent input noise voltage f = 1 kHz 25°C 8 nV/√H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 25°C 0.5 mVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 25°C 0.7 mV In Equivalent input noise current 25°C 0.6 fA/√Hz Gain bandwidthproduct f = 10 kHz, R L = 10 kW , 25°C 19 MHzGain-bandw idth product , C L = 100 pF L , 25°C 1.9 MH z fm Phase margin at unity gain R L = 10 kW , C L = 100 pF 25°C 48° † Full range is –40°C to 85°C.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 25POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2202I electrical characteristics at specified free-air temperature, VDD ± = ± 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2202AI TLC2202BI UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 80 500 80 500 mVVIO In ut offset voltage Full range 700 700 mV a VIO Temperature coefficient VIC =0 R S =5 0W Full range 05 05 mV/°Ca VIO of input offset voltage VIC = 0, R S = 50 W Full range 0.5 0.5 mV/°C Input offset voltage long-term drift (see Note 4) 25°C 0.001 0.005 0.001 0.005 mV/mo IIO Input offset current 25°C 0.5 0.5 pAIIO In ut offset current VIC =0 R S =5 0W Full range 150 150 A IIB Input bias current VIC = 0, R S = 50 W 25°C 1 1 pAIIB In ut bias current Full range 150 150 A Common mode input –5 –5 VICR Common -mode input voltage range R S = 50 W Full range to to Vvoltage range 2.7 2.7 VOM Maximum positive peak 25°C 4.7 4.8 4.7 4.8 VVOM + output voltage swing R L =1 0kW Full range 4.7 4.7 V VOM Maximum negative peak R L = 10 kW g output voltage swing Full range –4.7 –4.7 V VO = ± 4 V, 25°C 300 560 300 560 AVD Large-signal differential O R L = 500 kW Full range 150 150 V/mVAVD gg voltage amplification VO = ± 4 V, 25°C 50 100 50 100 V/mV O R L = 10 kW Full range 25 25 CMRR Common-mode rejection ratioVIC = VICRmin, 25°C 80 115 80 115 dBCMRR Common -mode rejection ratio IC ICR VO = 0, R S = 50 W Full range 80 80 dB kSVR Supply-voltage rejection ratioVDD ± ± 23Vt o ± 8V 25°C 80 110 80 110 dBkSVR yg j (DVDD ± /DVIO) VDD ± ± 2.3 V to ± 8 V Full range 80 80 dB IDD Supply current VO =0 No load 25°C 1.8 2.7 1.8 2.7 mAIDD Su ly current VO = 0, No load Full range 2.7 2.7 mA † Full range is –40°C to 85°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2202I operating characteristics at specified free-air temperature, VDD ± = ± 5 V PARAMETER TEST CONDITIONS TA † TLC2202AI TLC2202BI UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT V ± 2 3 V R 10 k W 25°C 18 27 18 27 V/msSR Slew rate at unity gain O L C L = 100 pF Full range 1.2 1.2 V/ms Vn Equivalent input noise voltagef = 10 Hz 25°C 18 35 18 30 nV/√HzVn qg (see Note 5) f = 1 kHz 25°C 8 15 8 12 nV/√Hz VN(PP) Peak-to-peak equivalent f = 0.1 to 1 Hz 25°C 0.5 0.5 mVVN(PP) q input noise voltage f = 0.1 to 10 Hz 25°C 0.7 0.7 mV In Equivalent input noise current 25°C 0.6 0.6 fA/√Hz f=1 0k H z RL =1 0kWGain-bandwidth product f = 10 kHz, R L = 10 kW , C 100 pF 25°C 1.9 1.9 MHzC L = 100 pF fm Phase margin at unity gainR L =1 0kW C L = 100pF 25°C 48° 48°fm Phase margin at unity gain R L = 10 kW , C L = 100 F 25°C 48° 48° † Full range is –40°C to 85°C. NOTE 5: This parameter is tested on a sample basis for the TLC2202A and on all devices for the TLC2202B. For other test requirements, please contact the factory. This statement has no bearing on testing or nontesting of other parameters.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
26 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2202I electrical characteristics at specified free-air temperature, VDD = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2202I UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT VIO Input offset voltage 25°C 100 1000 mVVIO Input offset voltage VIC =0 R S =5 0W Full range 1200 mV a VIO Temperature coefficient of input offset voltage VIC = 0, R S = 50 W Full range 0.5 mV/°C Input offset voltage long-term drift (see Note 4) 25°C 0.001 0.005 mV/mo IIO Input offset current Full range 150 IIB Input bias current VIC = 0, R S = 50 W 25°C 1 pA IIB Input bias current Full range 150 VICR Common-mode input voltage range R S = 50 W Full range to VICR gg S g 2.7 VOH Maximum high level output voltage R L =1 0kW 25°C 4.7 4.8 VVOH Ma ximum high-level output voltage R L = 10 kW Full range 4.7 V VOL Maximum low level output voltage IO =0 25°C 0 50 mVVOL Ma ximum low-level output voltage IO = 0 Full range 50 mV VO =1 V to 4 V, 25°C 150 315 AVD Large signal differential voltage amplification O , R L = 500 kW Full range 100 V/mVAVD Large-signal differential voltage amplification VO = 1 V to 4 V, 25°C 25 55 V/mV O , R L = 10 kW Full range 15 CMRR Common mode rejection ratio VO = 0, V IC = VICRmin, 25°C 75 110 dBCMRR Common -mode rejection ratio O , IC ICR , R S = 50 W Full range 75 dB kSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD =46Vt o1 6V 25°C 80 110 dBkSVR Supply-voltage rejection ratio (DVDD ± /DVIO) VDD = 4.6 V to 16 V Full range 80 dB IDD Supply current VO =25V No load 25°C 1.7 2.6 mAIDD Supply current VO = 2.5 V, No load Full range 2.6 mA † Full range is –40°C to 85°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2202I operating characteristics at specified free-air temperature, VDD = 5 V PARAMETER TEST CONDITIONS TA † TLC2202I UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT SR Slew rate at unity gain VO = 0.5 V to 2.5 V, 25°C 1.6 2.5 V/msSR Slew rate at unity gain O , R L = 10 kW ,C L = 100 pF Full range 1 V/ms V Equivalent input noise voltage f = 10 Hz 25°C 18 nV/√HzVn Equivalent input noise voltage f = 1 kHz 25°C 8 nV/√H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 25°C 0.5 mVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 25°C 0.7 mV In Equivalent input noise current 25°C 0.6 fA/√Hz Gain bandwidthproduct f = 10 kHz, R L = 10 kW , 25°C 19 MHzGain-bandw idth product , C L = 100 pF L , 25°C 1.9 MH z fm Phase margin at unity gain R L = 10 kW , C L = 100 pF 25°C 47° † Full range is –40°C to 85°C.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 27POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2202I electrical characteristics at specified free-air temperature, VDD = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2202AI TLC2202BI UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 80 500 80 500 mVVIO In ut offset voltage Full range 700 700 mV a VIO Temperature coefficient of VIC =0 R S =5 0W Full range 05 05 mV/°Ca VIO input offset voltage VIC = 0, R S = 50 W Full range 0.5 0.5 mV/°C Input offset voltage long-term drift (see Note 4) 25°C 0.001 0.005 0.001 0.005 mV/mo IIO Input offset current 25°C 0.5 0.5 pAIIO In ut offset current VIC =0 R S =5 0W Full range 150 150 A IIB Input bias current VIC = 0, R S = 50 W 25°C 1 1 pAIIB In ut bias current Full range 150 150 A Common mode input 0 0 VICR Common -mode input voltage range R S = 50 W Full range to to Vvoltage range 2.7 2.7 VOH Maximum high-level output R L =1 0kW 25°C 4.7 4.8 4.7 4.8 VVOH g voltage R L = 10 kW Full range 4.7 4.7 V VOL Maximum low-level output IO =0 25°C 0 50 0 50 mVVOL voltage IO = 0 Full range 50 50 mV VO = 1 V to 4 V, 25°C 150 315 150 315 AVD Large-signal differential O R L = 500 kW Full range 100 100 V/mVAVD gg voltage amplification VO =1 V to 4 V, 25°C 25 55 25 55 V/mV O R L = 10 kW Full range 15 15 CMRR Common-mode rejection ratioVIC = VICRmin, 25°C 75 110 75 110 dBCMRR Common -mode rejection ratio IC ICR VO = 0, R S = 50 W Full range 75 75 dB kSVR Supply-voltage rejection ratioVDD =46Vt o1 6V 25°C 80 110 80 110 dBkSVR yg j (DVDD ± /DVIO) VDD = 4.6 V to 16 V Full range 80 80 dB † Full range is –40°C to 85°C NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2202I operating characteristics at specified free-air temperature, VDD = 5 V PARAMETER TEST CONDITIONS TA † TLC2202AI TLC2202BI UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT V 05Vt o25V 25°C 16 25 16 25 V/msSR Slew rate at unity gain O R L = 10 kW ,C L = 100 pF Full range 1 1 V/ms Vn Equivalent input noise voltagef = 10 Hz 25°C 18 35 18 30 nV/√HzVn qg (see Note 5) f = 1 kHz 25°C 8 15 8 12 nV/√Hz VN(PP) Peak-to-peak equivalent f = 0.1 to 1 Hz 25°C 0.5 0.5 mVVN(PP) q input noise voltage f = 0.1 to 10 Hz 25°C 0.7 0.7 mV In Equivalent input noise current 25°C 0.6 0.6 fA/√Hz f=1 0k H z RL =1 0kWGain-bandwidth product f = 10 kHz, R L = 10 kW , C 100 pF 25°C 1.9 1.9 MHzC L = 100 pF fm Phase margin at unity gainR L =1 0kW C L = 100pF 25°C 47° 47°fm Phase margin at unity gain R L = 10 kW , C L = 100 F 25°C 47° 47° † Full range is –40°C to 85°C NOTE 5: This parameter is tested on a sample basis for the TLC2202A and on all devices for the TLC2202B. For other test requirements, please contact the factory. This statement has no bearing on testing or nontesting of other parameters.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
28 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2201M electrical characteristics at specified free-air temperature, VDD ± = ± 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2201M UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT VIO Input offset voltage 25°C 100 500 mVVIO Input offset voltage Full range 700 mV a VIO Temperature coefficient of input offset voltage Full range 0.5 mV/°C Input offset voltage long-term drift (see Note 4) VIC =0 R S =5 0W 25°C 0.001 0.005 mV/mo IIO Input offset current VIC = 0, R S = 50 W 25°C 0.5 pAIIO Input offset current Full range 500 pA IIB Input bias current 25°C 1 pAIIB Input bias current Full range 500 pA VICR Common-mode input voltage range R S = 50 W Full range to VICR gg S g 2.7 VOM Maximum positivepeak output voltage swing 25°C 4.7 4.8 VVOM+ Ma ximum positive peak output voltage sw ing R L =1 0kW Full range 4.7 V VOM Maximum negativepeak output voltage swing R L = 10 kW 25°C –4.7 –4.9 VVOM– Ma ximum negative peak output voltage sw ing Full range –4.7 V VO = ± 4V R L = 500 kW 25°C 400 560 AVD Large signal differential voltage amplification VO = ± 4 V, R L = 500 kW Full range 200 V/mVAVD Large-signal differential voltage amplification VO = ± 4V R L =1 0kW 25°C 90 100 V/mV VO = ± 4 V, R L = 10 kW Full range 45 CMRR Common mode rejection ratio VIC = VICRmin, 25°C 90 115 dBCMRR Common -mode rejection ratio VO = 0, R S = 50 W Full range 85 dB kSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD ± = ± 23Vt o ± 8V 25°C 90 110 dBkSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD ± = ± 2.3 V to ± 8 V Full range 85 dB IDD Supply current VO =0 No load 25°C 1.1 1.5 mAIDD Supply current VO = 0, No load Full range 1.5 mA † Full range is –55°C to 125°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2201M operating characteristics at specified free-air temperature, VDD ± = ± 5 V PARAMETER TEST CONDITIONS TA † TLC2201M UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT SR Slew rate at unity gain VO = ± 2.3 V, R L = 10 kW , 25°C 2 2.7 V/msSR Slew rate at unity gain C L = 100 pF Full range 1.3 V/ms V Equivalent input noise voltage f = 10 Hz 25°C 18 nV/√HzVn Equivalent input noise voltage f = 1 kHz 25°C 8 nV/√H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 25°C 0.5 mVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 25°C 0.7 mV In Equivalent input noise current 25°C 0.6 fA/√Hz Gain bandwidthproduct f = 10 kHz, R L = 10 kW , 25°C 19 MHzGain-bandw idth product C L = 100 pF L 25°C 1.9 MH z fm Phase margin R L = 10 kW , C L = 100 pF 25°C 48° † Full range is –55°C to 125°C.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 29POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2201M electrical characteristics at specified free-air temperature, VDD ± = ± 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2201AM TLC2210BM UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 80 200 80 200 mVVIO Input offset voltage Full range 400 400 mV a VIO Temperature coefficient of Full range 05 05 mV/°Ca VIO input offset voltage Full range 0.5 0.5 mV/°C Input offset voltage long-term drift (see Note 4)VIC = 0, R S = 50 W 25°C 0.001 0.005 0.001 0.005 mV/mo IIO Input offset current 25°C 0.5 0.5 pAIIO Input offset current Full range 500 500 pA IIB Input bias current 25°C 1 1 pAIIB Input bias current Full range 500 500 pA Common mode input –5 –5 VICR C ommon-mo de input voltage range R S = 50 W Full range to to VICR voltage range S g 2.7 2.7 VOM Maximum positive peak 25°C 4.7 4.8 4.7 4.8 VVOM+ output voltage swing R L =1 0kW Full range 4.7 4.7 V VOM Maximum negative peak R L = 10 kW VVOM– g output voltage swing Full range –4.7 –4.7 V VO = ± 4 V, 25°C 400 560 400 560 AVD Large-signal differential O , R L = 500 kW Full range 200 200 V/mVAVD gg voltage amplification VO = ± 4 V, 25°C 90 100 90 100 V/mV O , R L = 10 kW Full range 45 45 CMRR Common-mode rejection VIC = VICRmin, 25°C 90 115 90 115 dBCMRR j ratio VO = 0, R S = 50 W Full range 85 85 dB kSVR Supply voltage rejection VDD ± = ± 23Vt o ± 8V 25°C 90 110 90 110 dBkSVR yg j ratio (DVDD ± /DVIO) VDD ± = ± 2.3 V to ± 8 V Full range 85 85 dB IDD Supply current VO =0 No load 25°C 1.1 1.5 1.1 1.5 mAIDD Supply current VO = 0, No load Full range 1.5 1.5 mA † Full range is –55°C to 125°C. NOTE 4: Typical values are based on the input offset voltage shift observable through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
30 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2201M operating characteristics at specified free-air temperature, VDD ± = ± 5 V PARAMETER TEST TA † TLC2201AM TLC2201BM UNITPARAMETER CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VO = ± 23V 25°C 2 27 2 27 SR Slew rate at unity gain VO = ± 2.3 V, R L 10 kW 25°C 2 2.7 2 2.7 V/msSR Slew rate at unity gain R L = 10 kW , C L = 100 pF Full range 1.3 1.3 V/ms V Equivalent input noise voltagef = 10 Hz 25°C 18 35 18 30 nV/√HzVn qg (see Note 5) f = 1 kHz 25°C 8 15 8 12 nV/√H z VN(PP) Peak-to-peak equivalent input f = 0.1 to 1 Hz 25°C 0.5 0.5 mVVN(PP) q noise voltage f = 0.1 to 10 Hz 25°C 0.7 0.7 mV In Equivalent input noise current 25°C 0.6 0.6 fA/√Hz f = 10 kHz, Gain-bandwidth product f 10 kHz, R L = 10 kW, 25°C 1.9 1.9 MHzL , C L = 100 pF f Phase margin at unity gain R L = 10 kW , 25°C 48° 48°fm Phase margin at unity gain L C L = 100 pF 25°C 48° 48° † Full range is –55°C to 125°C. NOTE 5: This parameter is tested on a sample basis for the TLC2201A and on all devices for the TLC2201B. For other test requirements, please contact the factory. This statement has no bearing on testing or nontesting of other parameters.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 31POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2201M electrical characteristics at specified free-air temperature, VDD = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2201M UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT VIO Input offset voltage 25°C 100 500 mVVIO Input offset voltage Full range 700 mV a VIO Temperature coefficient of input offset voltage Full range 0.5 mV/°C Input offset voltage long-term drift (see Note 4) VIC =0 R S =5 0W 25°C 0.001 0.005* mV/mo IIO Input offset current VIC = 0, R S = 50 W 25°C 0.5 pAIIO Input offset current Full range 500 pA IIB Input bias current 25°C 1 pAIIB Input bias current Full range 500 pA VICR Common-mode input voltage range R S = 50 W Full range to VICR gg S g 2.7 VOH Maximum high level output voltage R L =1 0kW 25°C 4.7 4.8 VVOH Ma ximum high-level output voltage R L = 10 kW Full range 4.7 V VOL Maximum low level output voltage IO =0 25°C 0 50 mVVOL Ma ximum low-level output voltage IO = 0 Full range 50 mV VO = 1 V to 4 V, 25°C 150 315 AVD Large signal differential voltage amplification O , R L = 500 kW Full range 75 V/mVAVD Large-signal differential voltage amplification VO = 1 V to 4 V, 25°C 25 55 V/mV O , R L = 10 kW Full range 10 CMRR Common mode rejection ratio VIC = VICRmin, 25°C 90 110 dBCMRR Common -mode rejection ratio VO = 0, R S = 50 W Full range 85 dB kSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD =46Vt o1 6V 25°C 90 110 dBkSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD = 4.6 V to 16 V Full range 85 dB IDD Supply current VO =25V No load 25°C 1 1.5 mAIDD Supply current VO = 2.5 V, No load Full range 1.5 mA *On products compliant to MIL-PRF-38535, Class B, this parameter is not production tested. † Full range is –55°C to 125°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2201M operating characteristics at specified free-air temperature, VDD = 5 V PARAMETER TEST CONDITIONS TA † TLC2201M UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT SR Slew rate at unity gain VO = 0.5 V to 2.5 V, 25°C 1.8 2.5 V/msSR Slew rate at unity gain R L = 10 kW , C L = 100 pF Full range 1.1 V/ms V Equivalent input noise voltage f = 10 Hz 25°C 18 nV/√HzVn Equivalent input noise voltage f = 1 kHz 25°C 8 nV/√H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 25°C 0.5 mVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 25°C 0.7 mV In Equivalent input noise current 25°C 0.6 fA/√Hz Gain bandwidthproduct f = 10 kHz, R L = 10 kW , 25°C 18 MHzGain-bandw idth product C L = 100 pF L 25°C 1.8 MH z fm Phase margin at unity gain R L = 10 kW , C L = 100 pF 25°C 45° † Full range is –55°C to 125°C.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
32 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2201M electrical characteristics at specified free-air temperature, VDD = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2201AM TLC2210BM UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 80 200 80 200 mVVIO Input offset voltage Full range 400 400 mV a VIO Temperature coefficient of Full range 05 05 mV/°Ca VIO input offset voltage Full range 0.5 0.5 mV/°C Input offset voltage long-term drift (see Note 4)VIC = 0, R S = 50 W 25°C 0.001 0.005 0.001 0.005 mV/mo IIO Input offset current 25°C 0.5 0.5 pAIIO Input offset current Full range 500 500 pA IIB Input bias current 25°C 1 1 pAIIB Input bias current Full range 500 500 pA Common mode input 0 0 VICR C ommon-mo de input voltage range R S = 50 W Full range to to VICR voltage range S g 2.7 2.7 VOH Maximum high-level outputR L =1 0kW 25°C 4.7 4.8 4.7 4.8 VVOH g voltage R L = 10 kW Full range 4.7 4.7 V VOL Maximum low-level output IO =0 25°C 0 50 0 50 VVOL voltage IO = 0 Full range 50 50 V VO = 1 V to 4 V, 25°C 150 315 150 315 AVD Large-signal differential O , R L = 500 kW Full range 75 75 V/mVAVD gg voltage amplification VO = 1 V to 4 V, 25°C 25 55 25 55 V/mV O , R L = 10 kW Full range 10 10 CMRR Common-mode rejection VIC = VICRmin, 25°C 90 110 90 110 dBCMRR j ratio VO = 0, R S = 50 W Full range 85 85 dB kSVR Supply voltage rejection VDD =46Vt o1 6V 25°C 90 110 90 110 dBkSVR yg j ratio (DVDD ± /DVIO) VDD = 4.6 V to 16 V Full range 85 85 dB IDD Supply current VO =25V No load 25°C 1.1 1.5 1.1 1.5 mAIDD Supply current VO = 2.5 V, No load Full range 1.5 1.5 mA † Full range is –55°C to 125°C. NOTE 4: Typical values are based on the input offset voltage shift observable through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 33POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2201M operating characteristics at specified free-air temperature, VDD = 5 V PARAMETER TEST CONDITIONS TA † TLC2201AM TLC2201BM UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT SR Slew rate at unity gain VO = 0.5 V to 2.5 V, R L 10 kW 25°C 1.8 2.5 1.8 2.5 V/msSR Slew rate at unity gain R L = 10 kW , C L = 100 pF Full range 1.1 1.1 V/ms V Equivalent input noise voltagef = 10 Hz 25°C 18 35 18 30 nV/√HzVn qg (see Note 5) f = 1 kHz 25°C 8 15 8 12 nV/√H z VN(PP) Peak-to-peak equivalent inputf = 0.1 to 1 Hz 25°C 0.5 0.5 mVVN(PP) q noise voltage f = 0.1 to 10 Hz 25°C 0.7 0.7 mV In Equivalent input noise current 25°C 0.6 0.6 fA/√Hz f = 10 kHz, Gain-bandwidth product f 10 kHz, R L = 10 kW, 25°C 1.8 1.8 MHzL , C L = 100 pF f Phase margin at unity gain R L = 10 kW , 25°C 45° 45°fm Phase margin at unity gain L C L = 100 pF 25°C 45° 45° † Full range is –55°C to 125°C. NOTE 5: This parameter is tested on a sample basis for the TLC2201A and on all devices for the TLC2201B. For other test requirements, please contact the factory. This statement has no bearing on testing or nontesting of other parameters.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
34 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2202M electrical characteristics at specified free-air temperature, VDD ± = ± 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2202M UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT VIO Input offset voltage 25°C 100 1000 mVVIO Input offset voltage VIC =0 R S =5 0W Full range 1250 mV a VIO Temperature coefficient of input offset voltage VIC = 0, R S = 50 W Full range 0.5 mV/°C Input offset voltage long-term drift (see Note 4) 25°C 0.001 0.005* mV/mo IIO Input offset current Full range 500 IIB Input bias current VIC = 0, R S = 50 W 25°C 1 pA IIB Input bias current Full range 500 VICR Common-mode input voltage range R S = 50 W Full range to VICR gg S g 2.7 VOM Maximum positivepeak output voltage swing 25°C 4.7 4.8 VOM+ Ma ximum positive peak output voltage sw ing R L =1 0kW Full range 4.7 V VOM Maximum negativepeak output voltage swing R L = 10 kW 25°C –4.7 –4.9 VOM– Ma ximum negative peak output voltage sw ing Full range –4.7 V VO =1 V to 4 V, 25°C 300 560 AVD Large signal differential voltage amplification O , R L = 500 kW Full range 100 V/mVAVD Large-signal differential voltage amplification VO = 1 V to 4 V, 25°C 50 100 V/mV O , R L = 10 kW Full range 25 CMRR Common mode rejection ratio VO = 0, V IC = VICRmin, 25°C 80 115 dBCMRR Common -mode rejection ratio O , IC ICR , R S = 50 W Full range 80 dB kSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD = ± 23Vt o ± 8V 25°C 80 110 dBkSVR Supply-voltage rejection ratio (DVDD ± /DVIO) VDD = ± 2.3 V to ± 8 V Full range 80 dB IDD Supply current VO =0 No load 25°C 1.8 2.7 mAIDD Supply current VO = 0, No load Full range 2.7 mA *On products compliant to MIL-PRF-38535, Class B, this parameter is not production tested. † Full range is –55°C to 125°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2202M operating characteristics at specified free-air temperature, VDD ± = ± 5 V PARAMETER TEST CONDITIONS TA † TLC2202M UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT SR Slew rate at unity gain VO = ± 2.3 V, R L = 10 kW , 25°C 1.8 2.7 V/msSR Slew rate at unity gain O , C L = 100 pF L , Full range 1.1 V/ms V Equivalent input noise voltage f = 10 Hz 25°C 18 nV/√HzVn Equivalent input noise voltage f = 1 kHz 25°C 8 nV/√H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 25°C 0.5 mVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 25°C 0.7 mV In Equivalent input noise current 25°C 0.6 fA/√Hz Gain bandwidthproduct f = 10 kHz, R L = 10 kW , 25°C 19 MHzGain-bandw idth product , C L = 100 pF L , 25°C 1.9 MH z fm Phase margin at unity gain R L = 10 kW , C L = 100 pF 25°C 48° † Full range is –55°C to 125°C.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 35POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2202M electrical characteristics at specified free-air temperature, VDD ± = ± 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2202AM TLC2202BM UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 80 500 80 500 mVVIO In ut offset voltage Full range 750 750 mV a VIO Temperature coefficient VIC =0 R S =5 0W Full range 05 05 mV/°Ca VIO of input offset voltage VIC = 0, R S = 50 W Full range 0.5 0.5 mV/°C Input offset voltage long-term drift (see Note 4) 25°C 0.001 0.005* 0.001 0.005* mV/mo IIO Input offset current 25°C 0.5 0.5 pAIIO In ut offset current VIC =0 R S =5 0W Full range 500 500 A IIB Input bias current VIC = 0, R S = 50 W 25°C 1 1 pAIIB In ut bias current Full range 500 500 A Common mode input –5 –5 VICR Common -mode input voltage range R S = 50 W Full range to to Vvoltage range 2.7 2.7 VOM Maximum positive peak 25°C 4.7 4.8 4.7 4.8 VVOM + output voltage swing R L =1 0kW Full range 4.7 4.7 V VOM Maximum negative peak R L = 10 kW g output voltage swing Full range –4.7 –4.7 V VO = ± 4 V, 25°C 300 560 300 560 AVD Large-signal differential O R L = 500 kW Full range 100 100 V/mVAVD gg voltage amplification VO = ± 4 V, 25°C 50 100 50 100 V/mV O R L = 10 kW Full range 25 25 CMRR Common-mode rejection VO = 0, VIC = VICRmin, 25°C 80 115 80 115 dBCMRR j ratio OI C I C R R S = 50 W Full range 80 80 dB kSVR Supply-voltage rejectionVDD ± = ± 23Vt o ± 8V 25°C 80 110 80 110 dBkSVR yg j ratio (DVDD ± /DVIO) VDD ± = ± 2.3 V to ± 8 V Full range 80 80 dB *On products compliant to MIL-PRF-38535, Class B, this parameter is not production tested. † Full range is –55°C to 125°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
36 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2202M operating characteristics at specified free-air temperature, VDD ± = ± 5 V PARAMETER TEST CONDITIONS T † TLC2202AM TLC2202BM UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VO = ± 23V 25°C 18 27 18 27 SR Slew rate at unity gain VO = ± 2.3 V, R L 10 kW 25°C 1.8 2.7 1.8 2.7 V/msSR Slew rate at unity gain R L = 10 kW , C L = 100 pF Full range 1.1 1.1 V/ms V Equivalent input noise voltagef = 10 Hz 25°C 18 35* 18 30* nV/√HzVn qg (see Note 5) f = 1 kHz 25°C 8 15* 8 12* nV/√H z VN(PP) Peak-to-peak equivalent inputf = 0.1 to 1 Hz 25°C 0.5 0.5 mVVN(PP) q noise voltage f = 0.1 to 10 Hz 25°C 0.7 0.7 mV In Equivalent input noise current 25°C 0.6 0.6 fA/√Hz f = 10 kHz, Gain-bandwidth product f 10 kHz, R L = 10 kW, 25°C 1.9 1.9 MHzL , C L = 100 pF f Phase margin at unity gain R L = 10 kW , 25°C 48° 48°fm Phase margin at unity gain L C L = 100 pF 25°C 48° 48° *On products compliant to MIL-PRF-38535, Class B, this parameter is not production tested. † Full range is –55°C to 125°C. NOTE 5: This parameter is tested on a sample basis for the TLC2202A and on all devices for the TLC2202B. For other test requirements, please contact the factory. This statement has no bearing on testing or nontesting of other parameters.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 37POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2202M electrical characteristics at specified free-air temperatures, VDD = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLC2202M UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT VIO Input offset voltage 25°C 100 1000 mVVIO Input offset voltage VIC =0 R S =5 0W Full range 1250 mV a VIO Temperature coefficient of input offset voltage VIC = 0, R S = 50 W Full range 0.5 mV/°C Input offset voltage long-term drift (see Note 4) 25°C 0.001 0.005* mV/mo IIO Input offset current Full range 500 IIB Input bias current VIC = 0, R S = 50 W 25°C 1 pA IIB Input bias current Full range 500 VICR Common-mode input voltage range R S = 50 W Full range to VICR gg S g 2.7 VOH Maximum high level output voltage R L =1 0kW 25°C 4.7 4.8 VVOH Ma ximum high-level output voltage R L = 10 kW Full range 4.7 V VOL Maximum low level output voltage IO =0 25°C 0 50 mVVOL Ma ximum low-level output voltage IO = 0 Full range 50 mV VO = 1 V to 4 V, 25°C 150 315 AVD Large signal differential voltage amplification O , R L = 500 kW Full range 75 V/mVAVD Large-signal differential voltage amplification VO = 1 V to 4 V, 25°C 25 55 V/mV O , R L = 10 kW Full range 10 CMRR Common mode rejection ratio VIC =V ICRmin R S =5 0W 25°C 75 110 dBCMRR Common -mode rejection ratio VIC = VICRmin, R S = 50 W Full range 75 dB kSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD =46Vt o1 6V 25°C 80 110 dBkSVR Supply-voltage rejection ratio (DVDD ± /DVIO) VDD = 4.6 V to 16 V Full range 80 dB IDD Supply current VO =25V No load 25°C 1.7 2.6 mAIDD Supply current VO = 2.5 V, No load Full range 2.6 mA *On products compliant to MIL-PRF-38535, Class B, this parameter is not production tested. † Full range is –55°C to 125°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2202M operating characteristics at specified free-air temperature, VDD = 5 V PARAMETER TEST CONDITIONS TA † TLC2202M UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX UNIT SR Slew rate at unity gain VO = 0.5 V to 2.5 V, 25°C 1.6 2.5 V/msSR Slew rate at unity gain O , R L = 10 kW ,C L = 100 pF Full range 0.9 V/ms V Equivalent input noise voltage f = 10 Hz 25°C 18 nV/√HzVn Equivalent input noise voltage f = 1 kHz 25°C 8 nV/√H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 25°C 0.5 mVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 25°C 0.7 mV In Equivalent input noise current 25°C 0.6 fA/√Hz Gain bandwidthproduct f = 10 kHz, R L = 10 kW , 25°C 19 MHzGain-bandw idth product , C L = 100 pF L , 25°C 1.9 MH z fm Phase margin at unity gain R L = 10 kW , C L = 100 pF 25°C 47° † Full range is –55°C to 125°C.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
38 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2202M electrical characteristics at specified free-air temperature, VDD = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS T † TLC2202AM TLC2202BM UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 80 500 80 500 mVVIO Input offset voltage Full range 750 750 mV a VIO Temperature coefficient ofVIC =0 R S =5 0W Full range 05 05 mV/°Ca VIO input offset voltage VIC = 0, R S = 50 W Full range 0.5 0.5 mV/°C Input offset voltage long-term drift (see Note 4) 25°C 0.001 0.005* 0.001 0.005* mV/mo IIO Input offset current 25°C 0.5 0.5 pAIIO Input offset current VIC =0 R S =5 0W Full range 500 500 pA IIB Input bias current VIC = 0, R S = 50 W 25°C 1 1 pAIIB Input bias current Full range 500 500 pA Common mode input 0 0 VICR C ommon-mo de input voltage range R S = 50 W Full range to to VICR voltage range S g 2.7 2.7 VOH Maximum high-level outputR L =1 0kW 25°C 4.7 4.8 4.7 4.8 VVOH g voltage R L = 10 kW Full range 4.7 4.7 V VOL Maximum low-level outputIO =0 25°C 0 50 0 50 mVVOL voltage IO = 0 Full range 50 50 mV VO = 1 V to 4 V, 25°C 150 315 150 315 AVD Large-signal differential O , R L = 500 kW Full range 75 75 V/mVAVD gg voltage amplification VO = 1 V to 4 V, 25°C 25 55 25 55 V/mV O , R L = 10 kW Full range 10 10 CMRR Common-mode rejection VO = 0, VIC = VICRmin, 25°C 75 110 75 110 dBCMRR j ratio O , IC ICR , R S = 50 W Full range 75 75 dB kSVR Supply-voltage rejectionVDD =46Vt o1 6V 25°C 80 110 80 110 dBkSVR yg j ratio (DVDD ± /DVIO) VDD = 4.6 V to 16 V Full range 80 80 dB IDD Supply current VO =25V No load 25°C 1.7 2.6 1.7 2.6 mAIDD Supply current VO = 2.5 V, No load Full range 2.6 2.6 mA *On products compliant to MIL-PRF-38535, Class B, this parameter is not production tested. † Full range is –55°C to 125°C NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 39POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2202M operating characteristics at specified free-air temperature, VDD = 5 V PARAMETER TEST CONDITIONS T † TLC2202AM TLC2202BM UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VO =05Vt o25V 25°C 16 25 16 25 SR Slew rate at unity gain VO = 0.5 V to 2.5 V, R L 10 kW 25°C 1.6 2.5 1.6 2.5 V/msSR Slew rate at unity gain R L = 10 kW , C L = 100 pF Full range 0.9 1.1 V/ms V Equivalent input noise voltagef = 10 Hz 25°C 18 35* 18 30* nV/√HzVn qg (see Note 5) f = 1 kHz 25°C 8 15* 8 12* nV/√H z VN(PP) Peak-to-peak equivalent inputf = 0.1 to 1 Hz 25°C 0.5 0.5 mVVN(PP) q noise voltage f = 0.1 to 10 Hz 25°C 0.7 0.7 mV In Equivalent input noise current 25°C 0.6 0.6 fA/√Hz f = 10 kHz, Gain-bandwidth product R L = 10 kW, 25°C 1.9 1.9 MHzL C L = 100 pF f Phase margin at unity gainR L = 10 kW , 25°C 47° 47°fm Phase margin at unity gain L C L = 100 pF 25°C 47° 47° *On products compliant to MIL-PRF-38535, Class B, this parameter is not production tested. † Full range is –55°C to 125°C NOTE 5: This parameter is tested on a sample basis for the TLC2202A and on all devices for the TLC2202B. For other test requirements, please contact the factory. This statement has no bearing on testing or nontesting of other parameters.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
40 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLC2201Y electrical characteristics at VDD ± = ± 5 V, TA = 25°C (unless otherwise noted) PARAMETER TEST CONDITIONS TLC2201Y UNITPARAMETER TEST CONDITIONS MIN TYP MAX UNIT VIO Input offset voltage 100 mV Input offset voltage long-term drift (see Note 4) VIC =0 R S =5 0W 0.001 mV/mo IIO Input offset current VIC = 0, R S = 50 W 0.5 pA IIB Input bias current 1 pA VOH Maximum high-level output voltage R L = 10 kW 4.8 V VOL Maximum low-level output voltage IO = 0 0 mV AVD Large signal differential voltage amplification VO = 1 V to 4 V,R L = 500 W 55 V/mVAVD Large-signal differential voltage amplification VO = 1 V to 4 V,R L = 10 W 55 V/mV CMRR Common-mode rejection ratio VIC = VICRmin, R S = 50 W VO = 0, 110 dB kSVR Supply voltage rejection ratio (DVDD ± /DVIO) VDD = 4.6 to 16 V 110 dB IDD Supply current per amplifier VO = 2.5 V, No load 1 mA NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2201Y operating characteristics at VDD ± = ± 5 V, TA = 25°C PARAMETER TEST CONDITIONS TLC2201Y UNITPARAMETER TEST CONDITIONS MIN TYP MAX UNIT SR Positive slew rate at unity gain VO = ± 0.5 to 2.5 V,R L = 10 kW , C L = 100 pF 2.5 V/ms V Equivalent input noise voltage f = 10 Hz 18 nV/√HzVn Equivalent input noise voltage f = 1 kHz 8 nV/√H z VN(PP) Peak-to-peak equivalent input noisef = 0.1 to 1 Hz 0.5 mVVN(PP) q voltage f = 0.1 to 10 Hz 0.7 mV In Equivalent input noise current 0.6 pA/√Hz Gain-bandwidth product f = 10 kHz, R L = 10 kW , C L = 100 pF 1.8 MHz fm Phase margin at unity gain R L = 10 kW , C L = 100 pF 48°
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 41POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC2202Y electrical characteristics, VDD = 5 V, TA = 25°C (unless otherwise noted) PARAMETER TEST CONDITIONS TLC2202Y UNITPARAMETER TEST CONDITIONS MIN TYP MAX UNIT VIO Input offset voltage 100 mV Input offset voltage long-term drift (see Note 4) VIC =0 R S =5 0W 0.001 mV/mo IIO Input offset current VIC = 0, R S = 50 W 0.5 pA IIB Input bias current 1 pA VOH Maximum high-level output voltage R L = 10 kW 4.8 V VOL Maximum low-level output voltage IO = 0 0 mV AVD Large signal differential voltage amplification VO = 1 V to 4 V, R L = 500 W 315 V/mVAVD Large-signal differential voltage amplification VO = 1 V to 4 V, R L = 10 W 55 V/mV CMRR Common-mode rejection ratio VO = 0, VICRmin, R S = 50 W 110 dB kSVR Supply-voltage rejection ratio (DVDCC /DVIO) VDD = 4.6 to 16 V 110 dB IDD Supply current VO = 2.5 V, No load 1.7 mA NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV. TLC2202Y operating characteristics at VDD = 5 V, TA = 25°C PARAMETER TEST CONDITIONS TLC2202Y UNITPARAMETER TEST CONDITIONS MIN TYP MAX UNIT SR Positive slew rate at unity gain VO = 0.5 V to 2.5 V, C L = 100 pF R L = 10 kW , 2.5 V/ms V Equivalent input noise voltage f = 10 Hz 18 nV/√HzVn Equivalent input noise voltage f = 10 kHz 8 nV/√H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 0.5 mVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 0.7 mV In Equivalent input noise current 0.6 pA/√Hz B1 Gain-bandwidth product f = 10 kHz, C L = 100 pF R L = 10 kW , 1.9 MHz fm Phase margin at unity gain R L = 10 kW , C L = 100 pF 47°
42 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
Figure 1. Noise-Voltage Test Circuit
20 W 20 W
Figure 2. Phase-Margin Test Circuit NOTE A: CL includes fixture capacitance. Figure 3. Slew-Rate Test Circuit NOTE A: CL includes fixture capacitance. Figure 4. Input-Bias and Offset-Current Test Circuit Typical values presented in this data sheet represent the median (50% point) of device parametric performance. algebraically to determine the bias current of the device. performed on the TLC220xA. For other noise requirements, please contact the factory.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 43POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TYPICAL CHARACTERISTICS Table of Graphs FIGURE VIO Input offset voltage Distribution 5, 6 IIB Input bias current vs Common-mode input voltage 7IIB Input bias current g vs Free-air temperature 8 VOM Maximum peak output voltage vs Output current 9VOM Ma ximum peak output voltage vs Free-air temperature 10 VO(PP) Maximum peak-to-peak output voltage vs Frequency 11 vs Frequency 12 VOH High-level output voltage qy vs High-level output current 13OH gg g vs Free-air temperature 14 VOL Low level output voltage vs Low-level output current 15VOL Low-level output voltage vs Free-air temperature 16 AVD Large signal differential voltage amplificationvs Frequency 17AVD Large-signal differential voltage amplification qy vs Free-air temperature 18 IOS Short circuit output current vs Supply voltage 19IOS Short-circuit output current yg vs Free-air temperature 20 CMRR Common-mode rejection ratio vs Frequency 21 IDD Supply current vs Supply voltage 22IDD Supply current yg vs Free-air temperature 23, 24 Pulse response Small signal 25, 26Pulse response g Large signal 27, 28 SR Slew rate vs Supply voltage 29SR Slew rate yg vs Free-air temperature 30 Noise voltage (referred to input) 0.1 to 1 Hz 31Noise voltage (referred to input) 0.1 to 10 Hz 32 Gain bandwidthproduct vs Supply voltage 33, 34Gain-bandw idth product yg vs Free-air temperature f Phase margin vs Supply voltage 36, 37fm Phase margin yg vs Free-air temperature 38, 39 Phase shift vs Frequency 17
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
44 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
–500 –300 –100 VIO – Input Offset Voltage – mV 100 Percentage of Units – % 300 500 DISTRIBUTION OF TLC2201 INPUT OFFSET VOLTAGE
408 Units Tested From 2 Wafer Lots
VDD ± = ± 5 V TA = 25°C P Package Figure 5 Figure 6 –1000 200 Percentage of Units – % 600 1000 TLC2202 DISTRIBUTION OF INPUT OFFSET VOLTAGE VIO – Input Offset Voltage – mV VDD ± = ± 15 V
1726 Amplifiers Tested From 1 Wafer Lot
–600 –200 TA = 25°C P Package Figure 7 IIB – Input Bias Current – pA INPUT BIAS CURRENT vs COMMON-MODE INPUT VOLTAGE –10 – 4 – 3 – 2 – 1 012345 VIC – Common-Mode Input Voltage – V IIB VDD ± = ± 5 V TA = 25°C Figure 8 150 100 25 45 65 85 200 250 300 105 125 INPUT BIAS CURRENT † vs FREE-AIR TEMPERATURE – Input Bias Current – pAIIB TA – Free-Air Temperature – °C VO = 0 VIC = 0 VDD ± = ± 5 V † Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
46 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
VDD –6 VOM – High-Level Output Voltage – VV OH VDD –8 VDD –10 VDD –12 VDD –14 VDD –16 VDD VDD –2 VDD –4 IOH – High-Level Output Current – mA VDD = 5 V VDD = 10 V VDD = 16 V HIGH-LEVEL OUTPUT VOLTAGE vs HIGH-LEVEL OUTPUT CURRENT TA = 25°C Figure 14 TA – Free-Air Temperature – °C –75 –50 –25 0 25 50 75 100 125 HIGH-LEVEL OUTPUT VOLTAGE † vs FREE-AIR TEMPERATURE TA – Free-Air Temperature – °C VDD = 5 V R L = 10 kW VOM – High-Level Output Voltage – VV OH Figure 15 VOL – Low-Level Output Voltage – V 1.5 0.5 0246 81 0 TA = 25°C IOL – Low-Level Output Current – mA VOL LOW-LEVEL OUTPUT VOLTAGE vs LOW-LEVEL OUTPUT CURRENT VDD = 5 V VDD = 10 V VDD = 16 V Figure 16 –75 –50 –25 0 25 50 75 100 125 VOL – Low-Level Output Voltage – V 0.5 1.5 TA – Free-Air Temperature – °C VOL VDD = 5 V LOW-LEVEL OUTPUT VOLTAGE † vs FREE-AIR TEMPERATURE IOL = 5 mA IOL = 1 mA † Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
48 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
CMRR – Common-Mode Rejection Ratio – dB 100 120 100 k 1 M COMMON-MODE REJECTION RATIO vs FREQUENCY f – Frequency – Hz TA = 25°C VDD ± = ± 5 V VDD = 5 V Figure 22 1.5 0.5 012345 2.5 67 8 IDD – Supply Current – mADDI |VDD ±| – Supply Voltage – V VO = 0 No Load TA = 25°C TA = 125°C SUPPLY CURRENT † vs SUPPLY VOLTAGE TA = –55°C Figure 23 –75 –50 –25 0 25 50 75 100 125 0.2 0.4 0.6 0.8 1.2 TA – Free-Air Temperature – °C IDD – Supply Current – mADDI VO = VDD+ /2 No Load VDD = 5 V VDD ± = ± 5 V TLC2201 SUPPLY CURRENT † vs FREE-AIR TEMPERATURE Figure 24 –75 –50 –25 0 25 50 75 100 125 TA – Free-Air Temperature – °C 1.5 0.5 2.5 IDD – Supply Current – mADDI VO = VDD+ /2 No Load VDD = 5 V VDD ± = ± 5 V TLC2202 SUPPLY CURRENT † vs FREE-AIR TEMPERATURE † Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
50 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
|VDD ±| – Supply Voltage – V R L = 10 kW C L = 100 pF TA = 25°C SR – SR + m sSR – Slew Rate – V/ Figure 30 m sSR – Slew Rate – V/ –75 –50 –25 0 25 50 75 100 125 TA – Free-Air Temperature – °C SLEW RATE † vs FREE-AIR TEMPERATURE VDD ± = ± 5 V R L = 10 kW C L = 100 pF SR + SR – Figure 31 NOISE VOLTAGE (REFERRED TO INPUT) OVER A 10-SECOND INTERVAL Noise Voltage – uV 0123456 0.25 0.75 t – Time – s 789 1 0 0.5 VDD ± = ± 5 V f= 0.1 Hz to 1 Hz TA = 25°C Vm –0.25 –0.5 –0.75 Figure 32 0.8 0123456 0.4 0.2 0.6 t – Time – s 789 1 0 NOISE VOLTAGE (REFERRED TO INPUT) OVER A 10-SECOND INTERVAL VDD ± = ± 5 V f= 0.1 Hz to 10 Hz TA = 25°C Noise Voltage – uVVm –0.2 –0.4 –0.6 –0.8 † Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
52 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
50° 48° 46° 44° 42° 40° 01234567 8 |VDD ±| – Supply Voltage – V R L = 10 kW C L = 100 pF TA = 25°C om – Phase Margin f m TLC2202 PHASE MARGIN vs SUPPLY VOLTAGE Figure 38 –75 –50 –25 0 25 50 75 100 125 TA – Free-Air Temperature – °C VDD ± = ± 5 V VDD = 5 V R L = 10 kW C L = 100 pF 50° 48° 46° 44° 42° 40° om – Phase Margin fm TLC2201 PHASE MARGIN † vs FREE-AIR TEMPERATURE Figure 39 50° 48° 46° 44° 42° 40° –75 –50 –25 0 25 50 75 100 125 TA – Free-Air Temperature – °C VDD ± = ± 5 V VDD = 5 V R L = 10 kW C L = 100 pF om – Phase Margin f m TLC2202 PHASE MARGIN † vs FREE-AIR TEMPERATURE † Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 53POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
APPLICATION INFORMATION
Because CMOS devices are susceptible to latch-up due to their inherent parasitic thyristors, the TLC220x, TLC220xA, and TLC220xB inputs and outputs are designed to withstand –100-mA surge currents without sustaining latch-up; however, techniques reducing the chance of latch-up should be used whenever possible. Internal protection diodes should not be forward biased in normal operation. Applied input and output voltages should not exceed the supply voltage by more than 300 mV. Care should be exercised when using capacitive coupling on pulse generators. Supply transients should be shunted by the use of decoupling capacitors (0.1 mF typical) located across the supply rails as close to the device as possible. electrostatic discharge protection These devices use internal ESD-protection circuits that prevent functional failures at voltages at or below 2000 V. Care should be exercised in handling these devices as exposure to ESD may result in degradation of the device parametric performance. macromodel information Macromodel information provided was derived using MicrosimParts , the model generation software used with Microsim PSpice . The Boyle macromodel (see Note 5) and subcircuit in Figure 40 were generated using the TLC220x typical electrical and operating characteristics at 25°C. Using this information, output simulations of the following key parameters can be generated to a tolerance of 20% (in most cases): /C0068Unity-gain frequency /C0068Common-mode rejection ratio /C0068Phase margin /C0068DC output resistance /C0068AC output resistance /C0068Short-circuit output current limit /C0068Maximum positive output voltage swing /C0068Maximum negative output voltage swing /C0068Slew rate /C0068Quiescent power dissipation /C0068Input bias current /C0068Open-loop voltage amplification of Solid-State Circuits, SC-9, 353 (1974). PSpice and Parts are trademarks of MicroSim Corporation.
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
54 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
macromodel information (continued) OUT – + .subckt TLC220x 1 2 3 4 5 c1 11 12 8.51E–12 c2 6 7 50.00E–12 cpsr 85 86 79.6E–9 dcm+ 81 82 dx dcm– 83 81 dx dc 5 53 dx de 54 5 dx dlp 90 91 dx dln 92 90 dx dp 4 3 dx ecmr 84 99 (2,99) 1 epsr 85 0 poly(1) (3,4) –200E–6 20E–6 ense 89 2 poly(1) (88,0) 100E–6 1 fb 7 99 poly(6) vb vc ve vlp vln + vpsr 0 + 895.9E3 –90E3 90E3 90E3 –90E3 895E3 ga 6 0 11 12 314.2E–6 gcm 0 6 10 99 1.295E–9 gpsr 85 86 (85,86) 100E–6 grd1 60 11 (60,11) 3.141E–4 grd2 60 12 (60,12) 3.141E–4 hlim 90 0 vlim 1k hcmr 80 1 poly(2) vcm+ vcm– 0 1E2 1E2 irp 3 4 965E–6 VCC+ rp IN– IN+ VCC– rd1 j1 j2 rss iss rd2 ve de dp vc dc egnd vb fb gcm ga vlim ro1 ro2 hlim dip din vinvip iss 3 10 dc 135.0E–6 iio 2 0 .5E–12 i1 88 0 1E–21 j1 11 89 10 jx j2 12 80 10 jx r2 6 9 100.0E3 rcm 84 81 1k rn1 88 0 1500 ro1 8 5 188 ro2 7 99 187 rss 10 99 1.481E6 vad 60 4 –.3v vcm+ 82 99 2.2 vcm– 83 99 –4.5 vb 9 0 dc 0 vc 3 53 dc .9 ve 54 4 dc .8 vlim 7 8 dc 0 vlp 91 0 dc 2.8 vln 0 92 dc 2.8 vpsr 0 86 dc 0 .model dx d(is=800.0E–18) .model jx pjf(is=500.0E–15 beta=1.462E–3 + vto=–.155 kf=1E–17) .endsx Figure 40. Boyle Macromodel and Subcircuit
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 55POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 MECHANICAL INFORMATION D (R-PDSO-G**) PLASTIC SMALL-OUTLINE PACKAGE
14 PIN SHOWN
0.228 (5,80) 0.244 (6,20) 0.069 (1,75) MAX 0.010 (0,25) 0.004 (0,10) 0.014 (0,35) 0.020 (0,51) A 0.157 (4,00) 0.150 (3,81) 0.044 (1,12) 0.016 (0,40) Seating Plane 0.010 (0,25) PINS ** 0.008 (0,20) NOM A MIN A MAX DIM Gage Plane 0.189 (4,80) (5,00) 0.197 (8,55) (8,75) 0.337 0.344 (9,80) 0.394 (10,00) 0.386 0.004 (0,10) M0.010 (0,25) 0.050 (1,27) 0°–8° NOTES: A. All linear dimensions are in inches (millimeters). B. This drawing is subject to change without notice. C. Body dimensions do not include mold flash or protrusion, not to exceed 0.006 (0,15). D. Four center pins are connected to die mount pad. E. Falls within JEDEC MS-012
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
56 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
FK (S-CQCC-N**) LEADLESS CERAMIC CHIP CARRIER 4040140/D 10/96
28 TERMINAL SHOWN
B 0.358 (9,09) MAX (11,63) 0.560 (14,22) 0.560 0.458 0.858 (21,8) 1.063 (27,0) (14,22) ANO. OF MINMAX 0.358 0.660 0.761 0.458 0.342 (8,69) MIN (11,23) (16,26) 0.640 0.739 0.442 (9,09) (11,63) (16,76) 0.962 1.165 (23,83) 0.938 (28,99) 1.141 (24,43) (29,59) (19,32)(18,78) 0.020 (0,51) TERMINALS 0.080 (2,03) 0.064 (1,63) (7,80) 0.307 (10,31) 0.406 (12,58) 0.495 (12,58) 0.495 (21,6) 0.850 (26,6) 1.047 0.045 (1,14) 0.045 (1,14) 0.035 (0,89) 0.035 (0,89) 0.010 (0,25) 121314151618 17 432 0.020 (0,51) 0.010 (0,25) 12826 27 B SQ A SQ 0.055 (1,40) 0.045 (1,14) 0.028 (0,71) 0.022 (0,54) 0.050 (1,27) NOTES: A. All linear dimensions are in inches (millimeters). B. This drawing is subject to change without notice. C. This package can be hermetically sealed with a metal lid. D. The terminals are gold plated. E. Falls within JEDEC MS-004
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997 57POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 MECHANICAL INFORMATION JG (R-GDIP-T8) CERAMIC DUAL-IN-LINE PACKAGE 4040107/B 04/95 0.020 (0,51) MIN 0.200 (5,08) MAX 0.130 (3,30) MIN 0°–15° 0.008 (0,20) 0.310 (7,87) 0.290 (7,37) 0.245 (6,22) 0.280 (7,11) Seating Plane 0.023 (0,58) 0.400 (10,20) 0.355 (9,00) 0.063 (1,60) 0.015 (0,38) 0.065 (1,65) 0.045 (1,14) 0.100 (2,54) NOTES: A. All linear dimensions are in inches (millimeters). B. This drawing is subject to change without notice. C. This package can be hermetically sealed with a ceramic lid using glass frit. D. Index point is provided on cap for terminal identification only on press ceramic glass frit seal only E. Falls within MIL-STD-1835 GDIP1-T8
TLC220x, TLC220xA, TLC220xB, TLC220xY Advanced LinCMOS LOW-NOISE PRECISION OPERATIONAL AMPLIFIERS SLOS175 – FEBRUARY 1997
58 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
P (R-PDIP-T8) PLASTIC DUAL-IN-LINE PACKAGE 4040082/B 03/95 0.310 (7,87) 0.290 (7,37) 0.010 (0,25) NOM 0.400 (10,60) 0.355 (9,02) 0.020 (0,51) MIN 0.070 (1,78) MAX 0.240 (6,10) 0.260 (6,60) 0.200 (5,08) MAX 0.125 (3,18) MIN 0.015 (0,38) 0.021 (0,53) Seating Plane M0.010 (0,25) NOTES: A. All linear dimensions are in inches (millimeters). B. This drawing is subject to change without notice. C. Falls within JEDEC MS-001
Orderable Device Status(1) Package Type Package Drawing Pins Package Qty Eco Plan(2) Lead/Ball FinishMSL Peak Temp (3) 5962-9088201M2A ACTIVE LCCC FK 20 1 TBD POST-PLATE N / A for Pkg Type 5962-9088201MPA ACTIVE CDIP JG 8 1 TBD A42 SNPB N / A for Pkg Type 5962-9088203Q2A ACTIVE LCCC FK 20 1 TBD POST-PLATE N / A for Pkg Type 5962-9088203QPA ACTIVE CDIP JG 8 1 TBD A42 SNPB N / A for Pkg Type TLC2201ACD ACTIVE SOIC D 8 75 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201ACDG4 ACTIVE SOIC D 8 75 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201ACDR ACTIVE SOIC D 8 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201ACDRG4 ACTIVE SOIC D 8 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201ACP OBSOLETE PDIP P 8 TBD Call TI Call TI TLC2201AID ACTIVE SOIC D 8 75 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201AIDG4 ACTIVE SOIC D 8 75 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201AIDR ACTIVE SOIC D 8 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201AIDRG4 ACTIVE SOIC D 8 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201AIP OBSOLETE PDIP P 8 TBD Call TI Call TI TLC2201AMD ACTIVE SOIC D 8 75 TBD CU NIPDAU Level-1-220C-UNLIM TLC2201AMDG4 ACTIVE SOIC D 8 75 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201AMFKB ACTIVE LCCC FK 20 1 TBD POST-PLATE N / A for Pkg Type TLC2201AMJG ACTIVE CDIP JG 8 1 TBD A42 SNPB N / A for Pkg Type TLC2201AMJGB ACTIVE CDIP JG 8 1 TBD A42 SNPB N / A for Pkg Type TLC2201AMP OBSOLETE PDIP P 8 TBD Call TI Call TI TLC2201BCD OBSOLETE SOIC D 8 TBD Call TI Call TI TLC2201BCDR OBSOLETE SOIC D 8 TBD Call TI Call TI TLC2201BCP OBSOLETE PDIP P 8 TBD Call TI Call TI TLC2201BID OBSOLETE SOIC D 8 TBD Call TI Call TI TLC2201BIDR OBSOLETE SOIC D 8 TBD Call TI Call TI TLC2201BIP OBSOLETE PDIP P 8 TBD Call TI Call TI TLC2201BMP OBSOLETE PDIP P 8 TBD Call TI Call TI TLC2201CD ACTIVE SOIC D 8 75 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201CDG4 ACTIVE SOIC D 8 75 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201CDR ACTIVE SOIC D 8 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201CDRG4 ACTIVE SOIC D 8 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201CP ACTIVE PDIP P 8 50 Pb-Free (RoHS) CU NIPDAU N / A for Pkg Type PACKAGE OPTION ADDENDUM www.ti.com 9-Oct-2007 Addendum-Page 1
Orderable Device Status(1) Package Type Package Drawing Pins Package Qty Eco Plan(2) Lead/Ball FinishMSL Peak Temp (3) TLC2201CPE4 ACTIVE PDIP P 8 50 Pb-Free (RoHS) CU NIPDAU N / A for Pkg Type TLC2201CPSR OBSOLETE SO PS 8 TBD Call TI Call TI TLC2201ID ACTIVE SOIC D 8 75 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201IDG4 ACTIVE SOIC D 8 75 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201IDR ACTIVE SOIC D 8 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201IDRG4 ACTIVE SOIC D 8 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2201IP ACTIVE PDIP P 8 50 Pb-Free (RoHS) CU NIPDAU N / A for Pkg Type TLC2201IPE4 ACTIVE PDIP P 8 50 Pb-Free (RoHS) CU NIPDAU N / A for Pkg Type TLC2201MFKB ACTIVE LCCC FK 20 1 TBD POST-PLATE N / A for Pkg Type TLC2201MJG ACTIVE CDIP JG 8 1 TBD A42 SNPB N / A for Pkg Type TLC2201MJGB ACTIVE CDIP JG 8 1 TBD A42 SNPB N / A for Pkg Type TLC2202ACD ACTIVE SOIC D 14 50 Green (RoHS & no Sb/Br) Call TI Level-1-260C-UNLIM TLC2202ACDG4 ACTIVE SOIC D 14 50 Green (RoHS & no Sb/Br) Call TI Level-1-260C-UNLIM TLC2202ACDR ACTIVE SOIC D 14 2500 Green (RoHS & no Sb/Br) Call TI Level-1-260C-UNLIM TLC2202ACDRG4 ACTIVE SOIC D 14 2500 Green (RoHS & no Sb/Br) Call TI Level-1-260C-UNLIM TLC2202ACP OBSOLETE PDIP P 8 TBD Call TI Call TI TLC2202AID ACTIVE SOIC D 14 50 Green (RoHS & no Sb/Br) Call TI Level-1-260C-UNLIM TLC2202AIDG4 ACTIVE SOIC D 14 50 Green (RoHS & no Sb/Br) Call TI Level-1-260C-UNLIM TLC2202AIP OBSOLETE PDIP P 8 TBD Call TI Call TI TLC2202BCD OBSOLETE SOIC D 14 TBD Call TI Call TI TLC2202BCDR OBSOLETE SOIC D 14 TBD Call TI Call TI TLC2202BCP OBSOLETE PDIP P 8 TBD Call TI Call TI TLC2202BID OBSOLETE SOIC D 14 TBD Call TI Call TI TLC2202BIDR OBSOLETE SOIC D 14 TBD Call TI Call TI TLC2202BIP OBSOLETE PDIP P 8 TBD Call TI Call TI TLC2202BMD OBSOLETE SOIC D 8 TBD Call TI Call TI TLC2202BMP OBSOLETE PDIP P 8 TBD Call TI Call TI TLC2202CD ACTIVE SOIC D 14 50 Green (RoHS & no Sb/Br) Call TI Level-1-260C-UNLIM TLC2202CDG4 ACTIVE SOIC D 14 50 Green (RoHS & no Sb/Br) Call TI Level-1-260C-UNLIM TLC2202CDR ACTIVE SOIC D 14 2500 Green (RoHS & no Sb/Br) Call TI Level-1-260C-UNLIM TLC2202CDRG4 ACTIVE SOIC D 14 2500 Green (RoHS & no Sb/Br) Call TI Level-1-260C-UNLIM TLC2202CP ACTIVE PDIP P 8 50 Pb-Free CU NIPDAU N / A for Pkg Type PACKAGE OPTION ADDENDUM www.ti.com 9-Oct-2007 Addendum-Page 2
Orderable Device Status(1) Package Type Package Drawing Pins Package Qty Eco Plan(2) Lead/Ball FinishMSL Peak Temp (3) (RoHS) TLC2202CPE4 ACTIVE PDIP P 8 50 Pb-Free (RoHS) CU NIPDAU N / A for Pkg Type TLC2202CPSR ACTIVE SO PS 8 2000 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2202CPSRG4 ACTIVE SO PS 8 2000 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2202ID ACTIVE SOIC D 14 50 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2202IDG4 ACTIVE SOIC D 14 50 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TLC2202IP ACTIVE PDIP P 8 50 Pb-Free (RoHS) CU NIPDAU N / A for Pkg Type TLC2202IPE4 ACTIVE PDIP P 8 50 Pb-Free (RoHS) CU NIPDAU N / A for Pkg Type (1)The marketing status values are defined as follows: ACTIVE: Product device recommended for new designs. LIFEBUY: TI has announced that the device will be discontinued, and a lifetime-buy period is in effect. NRND: Not recommended for new designs. Device is in production to support existing customers, but TI does not recommend using this part in a new design. PREVIEW: Device has been announced but is not in production. Samples may or may not be available. OBSOLETE: TI has discontinued the production of the device. (2)Eco Plan - The planned eco-friendly classification: Pb-Free (RoHS), Pb-Free (RoHS Exempt), or Green (RoHS & no Sb/Br) - please check http://www.ti.com/productcontentfor the latest availability information and additional product content details. TBD: The Pb-Free/Green conversion plan has not been defined. Pb-Free (RoHS):TI's terms "Lead-Free" or "Pb-Free" mean semiconductor products that are compatible with the current RoHS requirements for all 6 substances, including the requirement that lead not exceed 0.1% by weight in homogeneous materials. Where designed to be soldered at high temperatures, TI Pb-Free products are suitable for use in specified lead-free processes. Pb-Free (RoHS Exempt):This component has a RoHS exemption for either 1) lead-based flip-chip solder bumps used between the die and package, or 2) lead-based die adhesive used between the die and leadframe. The component is otherwise considered Pb-Free (RoHS compatible) as defined above. Green (RoHS & no Sb/Br):TI defines "Green" to mean Pb-Free (RoHS compatible), and free of Bromine (Br) and Antimony (Sb) based flame retardants (Br or Sb do not exceed 0.1% by weight in homogeneous material) (3) MSL, Peak Temp. -- The Moisture Sensitivity Level rating according to the JEDEC industry standard classifications, and peak solder temperature. Important Information and Disclaimer:The information provided on this page represents TI's knowledge and belief as of the date that it is provided. TI bases its knowledge and belief on information provided by third parties, and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. TI has taken and continues to take reasonable steps to provide representative and accurate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals. TI and TI suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release. In no event shall TI's liability arising out of such information exceed the total purchase price of the TI part(s) at issue in this document sold by TI to Customer on an annual basis. PACKAGE OPTION ADDENDUM www.ti.com 9-Oct-2007 Addendum-Page 3
*All dimensions are nominal Device Package Type Package Drawing Pins SPQ Reel Diameter (mm) Reel Width W1 (mm) A0 (mm) B0 (mm) K0 (mm) P1 (mm) W (mm) Pin1 Quadrant PACKAGE MATERIALS INFORMATION www.ti.com 11-Mar-2008 Pack Materials-Page 1
*All dimensions are nominal Device Package Type Package Drawing Pins SPQ Length (mm) Width (mm) Height (mm) TLC2201ACDR SOIC D 8 2500 346.0 346.0 29.0 TLC2201AIDR SOIC D 8 2500 346.0 346.0 29.0 TLC2201CDR SOIC D 8 2500 346.0 346.0 29.0 TLC2201IDR SOIC D 8 2500 346.0 346.0 29.0 TLC2202ACDR SOIC D 14 2500 346.0 346.0 33.0 TLC2202CDR SOIC D 14 2500 346.0 346.0 33.0 TLC2202CPSR SO PS 8 2000 346.0 346.0 33.0 PACKAGE MATERIALS INFORMATION www.ti.com 11-Mar-2008 Pack Materials-Page 2
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