TLE202X TI | Alldatasheet
Document overview
- Manufacturer or author: Provided By ALLDATASHEET.COM(FREE DATASHEET DOWNLOAD SITE)
- PDF pages: 66
Technical content
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 1POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 /C0068Supply Current...230 µA Max /C0068High Unity-Gain Bandwidth...2 MHz Typ /C0068High Slew Rate... 0.45 V/µs Min /C0068Supply-Current Change Over Military Temp Rang e...1 0 µA Typ at VCC ± = ± 15 V /C0068Specified for Both 5-V Single-Supply and ±15-V Operation /C0068Phase-Reversal Protection /C0068High Open-Loop Gain... 6.5 V/µV (136 dB) Typ /C0068Low Offset Voltage. . . 100 µV Max /C0068Offset Voltage Drift With Time 0.005 µV/mo Typ /C0068Low Input Bias Current...5 0 n A M a x /C0068Low Noise Voltage. . . 19 nV/√Hz Typ
description
The TLE202x, TLE202xA, and TLE202xB devices are precision, high-speed, low-power operational amplifiers using a new Texas Instruments Excalibur process. These devices combine the best features of the OP21 with highly improved slew rate and unity-gain bandwidth. The complementary bipolar Excalibur process utilizes isolated vertical pnp transistors that yield dramatic improvement in unity-gain bandwidth and slew rate over similar devices. The addition of a bias circuit in conjunction with this process results in extremely stable parameters with both time and temperature. This means that a precision device remains a precision device even with changes in temperature and over years of use. This combination of excellent dc performance with a common-mode input voltage range that includes the negative rail makes these devices the ideal choice for low-level signal conditioning applications in either single-supply or split-supply configurations. In addition, these devices offer phase-reversal protection circuitry that eliminates an unexpected change in output states when one of the inputs goes below the negative supply rail. A variety of available options includes small-outline and chip-carrier versions for high-density systems applications. 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. Copyright 1997, Texas Instruments IncorporatedPRODUCTION 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. 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
2 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
AT 25°C SMALL OUTLINE † (D) SSOP ‡ (DB) CHIP CARRIER (FK) CERAMIC DIP (JG) PLASTIC DIP (P) TSSOP ‡ (PW) CHIP FORM § (Y) 0°C to 200 µV TLE2021ACD TLE2021CDBLE TLE2021ACP — — 70°C µ 500 µV TLE2021CD TLE2021CDBLE — — TLE2021CP TLE2021CPWLE TLE2021Y –40°C to 200 µV TLE2021AID TLE2021AIPto 85°C µ 500 µV TLE2021ID — — — TLE2021AIP TLE2021IP — — –55°C 100 µV — TLE2021BMFK TLE2021BMJG — to µ 200 µV TLE2021AMD — TLE2021AMFK TLE2021AMJG TLE2021AMP — — 125°C 500 µV TLE2021MD TLE2021MFK TLE2021MJG TLE2021MP † The D packages are available taped and reeled. To order a taped and reeled part, add the suffix R (e.g., TLE2021CDR). ‡ The DB and PW packages are only available left-end taped and reeled. § Chip forms are tested at 25°C only. TLE2022 AVAILABLE OPTIONS PACKAGED DEVICES CHIP TA VIOmax AT 25°C SMALL OUTLINE † (D) SSOP ‡ (DB) CHIP CARRIER (FK) CERAMIC DIP (JG) PLASTIC DIP (P) TSSOP ‡ (PW) CHIP FORM § (Y) 0°C to 150 µV 300 µV TLE2022BCD TLE2022ACD — — TLE2022ACP —to 70°C 300 µV 500 µV TLE2022ACD TLE2022CD TLE2022CDBLE — — TLE2022ACP TLE2022CP TLE2022CPWLE TLE2022Y –40°C to 150 µV 300 µV TLE2022BID TLE2022AID TLE2022AIPto 85°C 300 µV 500 µV TLE2022AID TLE2022ID — — — TLE2022AIP TLE2022IP — — –55°C 150 µV — — TLE2022BMJG —55 C to 150 µV 300 µV TLE2022AMD — TLE2022AMFK TLE2022BMJG TLE2022AMJG TLE2022AMP — — 125°C µ 500 µV TLE2022MD TLE2022MFK TLE2022MJG TLE2022MP ‡ The D packages are available taped and reeled. To oerder a taped and reeled part, add the suffix R (e.g., TLE2022CDR). ‡ The DB and PW packages are only available left-end taped and reeled. † Chip forms are tested at 25°C only. TLE2024 AVAILABLE OPTIONS PACKAGED DEVICES CHIP TA VIOmax AT 25°C SMALL OUTLINE (DW) CHIP CARRIER (FK) CERAMIC DIP (J) PLASTIC DIP (N) CHIP FORM † (Y) 500 µV TLE2024BCDW TLE2024BCN — 0°C to 70°C 500 µV 750 µV TLE2024BCDW TLE2024ACDW — — TLE2024BCN TLE2024ACN —µ 1000 µV TLE2024CDW TLE2024CN TLE2024Y 500 µV TLE2024BIDW TLE2024BIN –40°C to 85°C 500 µV 750 µV TLE2024BIDW TLE2024AIDW — — TLE2024BIN TLE2024AIN —µ 1000 µV TLE2024IDW TLE2024IN 500 µV TLE2024BMDW TLE2024BMFK TLE2024BMJ TLE2024BMN –55°C to 125°C µ 750 µV TLE2024AMDW TLE2024AMFK TLE2024AMJ TLE2024AMN — 1000 µV TLE2024MDW TLE2024MFK TLE2024MJ TLE2024MN † Chip forms are tested at 25°C only.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 3POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 description (continued) OFFSET N1 IN – IN + VCC – /GND NC VCC + OUT OFFSET N2 NC – No internal connection 3212 0 1 9 91 0 1 1 1 2 1 3 NC VCC + NC OUT NC NC IN – NC IN + NC TLE2021 FK PACKAGE (TOP VIEW)NC OFFSET N1 NC NC NC NC GND NC OFFSET N2 NC CC –V/ TLE2021 D, DB, JG, P, OR PW PACKAGE (TOP VIEW) 1OUT 1IN – 1IN + VCC – /GND VCC + 2OUT 2IN – 2IN + D, DB, JG, P, OR PW PACKAGE (TOP VIEW) 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 FK PACKAGE (TOP VIEW)NC 1OUT NC NC NC NC GND NC 2IN + CC –V/ CC +V
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
4 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
1IN– 1IN+ VCC+ 2IN+ 2IN– 2OUT NC 4OUT 4IN– 4IN+ V CC – /GND 3IN+ 3IN– 3OUT NC DW PACKAGE (TOP VIEW) 3 2 1 20 19 91 0 1 1 1 2 1 3 4IN+ NC V CC– /GND NC 3IN+ 1IN+ NC V CC+ NC 2IN+ 1IN – 1OUT NC 3OUT 3IN – 4OUT 4IN – 2IN – 2OUT NC NC – No internal connection 1OUT 1IN– 1IN+ VCC+ 2IN+ 2IN– 2OUT 4OUT 4IN– 4IN+ V CC– /GND 3IN+ 3IN– 3OUT FK PACKAGE (TOP VIEW) J OR N PACKAGE (TOP VIEW)
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 5POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLE2021Y chip information This chip, when properly assembled, display characteristics similar to the TLE2021. Thermal compression or ultrasonic bonding may be used on the doped-aluminum bonding pads. This chip 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. OUT IN+ IN– VCC+ (7) (3) (2) (6) (4) VCC– /GND (1) (5) OFFSET N1 OFFSET N2 (1) (2) (3) (4) (5)(6)(7)
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
6 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
This chip, when properly assembled, displays characteristics similar to TLE2022. Thermal compression or ultrasonic bonding may be used on the doped-aluminum bonding pads. This chip 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. OUT IN+ IN– VCC+ (8) (6) (3) (2) (5) (1) +(7) IN+ IN– OUT (4) VCC– (1) (2) (3) (4) (5) (6)(7) (8)
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 7POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLE2024Y chip information This chip, when properly assembled, displays characteristics similar to the TLE2024. Thermal compression or ultrasonic bonding may be used on the doped aluminum-bonding pads. This chip 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 (11) IS INTERNALLY CONNECTED TO BACKSIDE OF CHIP. 1OUT 1IN+ 1IN– VCC+ (4) (6) (3) (2) (5) (1) +(7) 2IN+ 2IN– 2OUT (11) VCC–/GND 3OUT 2IN+ 3IN– (13) (10) (9) (12) (8) +(14) 4OUT 4IN+ 4IN– 100 140
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
8 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
equivalent schematic (each amplifier) IN – Q23 Q25 Q10 Q11 Q12 Q13 Q14 Q15 Q16 Q17 Q18 Q19 Q20 Q21 Q22 Q24 Q26 Q27 Q28 Q29 Q30 Q31 Q32 Q33 Q34 Q35 Q36 Q37 Q38 Q39 Q40 D1 D2 D4IN + OUT OFFSET N1 (see Note A) VCC+ VCC– /GND OFFSET N2 (see Note A) ACTUAL DEVICE COMPONENT COUNT COMPONENT TLE2021 TLE2022 TLE2024 Transistors 40 80 160 Resistors 7 14 28 Diodes 4 8 16 Capacitors 4 8 16
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 9POST 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 VCC+ , and VCC– . 2. Differential voltages are at IN+ with respect to IN–. Excessive current flows if a differential input voltage in excess of approximately ± 600 mV is applied between the inputs unless some limiting resistance is used. 3. The output may be shorted to either supply. Temperature and/or supply voltages must be limited to ensure that the maximum dissipation rating is not exceeded. DISSIPATION RATING TABLE PACKAGE TA ≤ 25°C POWER RATING DERATING FACTOR ABOVE T A = 25°C TA = 70°C POWER RATING TA = 85°C POWER RATING TA = 125°C POWER RATING D–8 725 mW 5.8 mW/°C 464 mW 377 mW 145 mW DB–8 525 mW 4.2 mW/ °C 336 mW — — DW–16 1025 mW 8.2 mW/ °C 656 mW 533 mW 205 mW FK 1375 mW 11.0 mW/ °C 880 mW 715 mW 275 mW J–14 1375 mW 11.0 mW/ °C 880 mW 715 mW 275 mW JG–8 1050 mW 8.4 mW/ °C 672 mW 546 mW 210 mW N–14 1150 mW 9.2 mW/ °C 736 mW 598 mW 230 mW P–8 1000 mW 8.0 mW/ °C 640 mW 520 mW 200 mW PW–8 525 mW 4.2 mW/°C 336 mW — — recommended operating conditions C SUFFIX I SUFFIX M SUFFIX UNIT MIN MAX MIN MAX MIN MAX UNIT Supply voltage, VCC ± 2 ± 20 ± 2 ± 20 ± 2 ± 20 V Common mode in put voltage VIC VCC = ± 5 V 0 3.5 0 3.2 0 3.2 VCommon -mode input voltage, VIC VCC ± = ± 15 V –15 13.5 –15 13.2 –15 13.2 V Operating free-air temperature, TA 0 70 –40 85 –55 125 °C
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 Temp late R elease D ate: 7–11–94
10 POST OFFICE BOX 655303 DALLAS, TEXAS 75265•
TLE2021 electrical characteristics at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS T † TLE2021C TLE2021AC TLE2021BC UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 120 600 100 300 80 200 µVVIO Input offset voltage Full range 850 600 300 µV α VIO Temperature coefficient of input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, RS = 50 Ω 25°C 0.005 0.005 0.005 µV/mo IIO Input offset current IC , S 25°C 0.2 6 0.2 6 0.2 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 25 70 25 70 25 70 nAIIB Input bias current Full range 90 90 90 nA VICR Common mode input voltage range R S =5 0Ω 25°C to 3.5 – 0.3 to to 3.5 – 0.3 to to 3.5 – 0.3 to VVICR Common -mode input voltage range R S = 50 Ω Full range to 3.5 to 3.5 to 3.5 V VOH High level output voltage 25°C 4 4.3 4 4.3 4 4.3 VVOH High-level output voltage R L=1 0kΩ Full range 3.9 3.9 3.9 V VOL Low level output voltage R L= 10 kΩ VVOL Low-level output voltage Full range 0.85 0.85 0.85 V AVD V/µVAVD gg voltage amplification O , R L = 10 kΩ Full range 0.3 0.3 0.3 V/µV CMRR Common mode rejection ratio VIC = VICRmin, 25°C 85 110 85 110 85 110 dBCMRR Common -mode rejection ratio IC ICR , R S = 50 Ω Full range 80 80 80 dB kSVR Supply-voltage rejection ratio VCC =5Vt o3 0V 25°C 105 120 105 120 105 120 dBkSVR yg j (ΔVCC /ΔVIO) VCC = 5 V to 30 V Full range 100 100 100 dB ICC Supply current 25°C 170 230 170 230 170 230 µAICC Supply current VO = 2.5 V, Full range 230 230 230 µA ΔICC Supply-current change over operating temperature range No load Full range 5 5 5 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 POST OFFICE BOX 655303 DALLAS, TEXAS 75265• 11 TLE2021 electrical characteristics at specified free-air temperature, VCC = ±15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2021C TLE2021AC TLE2021BC UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 120 500 80 200 40 100 µVVIO Input offset voltage Full range 750 500 200 µV α VIO Temperature coefficient of input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, RS = 50 Ω 25°C 0.006 0.006 0.006 µV/mo IIO Input offset current 25°C 0.2 6 0.2 6 0.2 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 25 70 25 70 25 70 nAIIB Input bias current Full range 90 90 90 nA VICR Common mode input voltage range R S =5 0Ω 25°C –15 to 13.5 –15.3 to –15 to 13.5 –15.3 to –15 to 13.5 –15.3 to VVICR Common -mode input voltage range R S = 50 Ω Full range –15 to 13.5 to 13.5 to 13.5 V VOM Maximum positive peak 25°C 14 14.3 14 14.3 14 14.3 VVOM+ output voltage swing R L =1 0kΩ Full range 13.9 13.9 13.9 V VOM Maximum negative peak R L = 10 kΩ VVOM – g output voltage swing Full range–13.7 –13.7 –13.7 V AVD Large-signal differential VO =± 10 V, 25°C 1 6.5 1 6.5 1 6.5 V/µVAVD gg voltage amplification O , R L = 10 kΩ Full range 1 1 1 V/µV CMRR Common mode rejection ratio VIC = VICR min, 25°C 100 115 100 115 100 115 dBCMRR Common -mode rejection ratio IC ICR , R S = 50 Ω Full range 96 96 96 dB kSVR Supply-voltage rejection ratio VCC ± = ± 2.5 V 25°C 105 120 105 120 105 120 dBkSVR yg j (ΔVCC /ΔVIO) CC ± to ± 15 V Full range 100 100 100 dB ICC Supply current 25°C 200 300 200 300 200 300 µAICC Supply current VO = 0 No load Full range 300 300 300 µA ΔICC Supply-current change over operating temperature range VO = 0, No load Full range 6 6 6 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 Temp late R elease D ate: 7–11–94
12 POST OFFICE BOX 655303 DALLAS, TEXAS 75265•
TLE2022 electrical characteristics at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2022C TLE2022AC TLE2022BC UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 600 400 250 µVVIO Input offset voltage Full range 800 550 400 µV α VIO Temperature coefficient of Full range 2 2 2 µV/°Cα VIO input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-term VIC =0 R S =5 0Ω 25°C 0 005 0 005 0 005 µV/mogg drift (see Note 4) VIC = 0, R S = 50 Ω 25°C 0.005 0.005 0.005 µV/mo IIO Input offset current 25°C 0.5 6 0.4 6 0.3 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 35 70 33 70 30 70 nAIIB Input bias current Full range 90 90 90 nA 25°C to 0.3 to to 0.3 to to 0.3 to VICR Common-mode input R S =5 0Ω 3.5 4 3.5 4 3.5 4 VVICR voltage range R S = 50 Ω 0 0 0 V Full range to to tog 3.5 3.5 3.5 VOH High level output voltage 25°C 4 4.3 4 4.3 4 4.3 VVOH High-level output voltage R L =1 0kΩ Full range 3.9 3.9 3.9 V VOL Low level output voltage R L = 10 kΩ VVOL Low-level output voltage Full range 0.85 0.85 0.85 V AVD Large-signal differential VO =14Vt o4V R L =1 0kΩ V/µVAVD gg voltage amplification VO = 1.4 V to 4 V, R L = 10 kΩ Full range 0.3 0.4 0.5 V/µV CMRR Common mode rejection ratioVIC =V ICRmin R S =5 0Ω 25°C 85 100 87 102 90 105 dBCMRR Common -mode rejection ratio VIC = VICRmin, R S = 50 Ω Full range 80 82 85 dB kSVR Supply-voltage rejection ratioVCC =5Vt o3 0V 25°C 100 115 103 118 105 120 dBkSVR yg j (ΔVCC ± /ΔVIO) VCC = 5 V to 30 V Full range 95 98 100 dB ICC Supply current 25°C 450 600 450 600 450 600 µAICC Supply current VO =25V No load Full range 600 600 600 µA ΔICC Supply current change over VO = 2.5 V, No load Full range 7 7 7 µAΔICC yg operating temperature range Full range 7 7 7 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 POST OFFICE BOX 655303 DALLAS, TEXAS 75265• 13 TLE2022 electrical characteristics at specified free-air temperature, VCC =± 15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2022C TLE2022AC TLE2022BC UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 150 500 120 300 70 150 µVVIO Input offset voltage Full range 700 450 300 µV Temperature coefficient of Full range 2 2 2 µV/°Cα VIO input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-termVIC =0 R S =5 0Ω 25°C 0 006 0 006 0 006 µV/mogg drift (see Note 4) VIC = 0, R S = 50 Ω 25°C 0.006 0.006 0.006 µV/mo IIO Input offset current 25°C 0.5 6 0.4 6 0.3 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 35 70 33 70 30 70 nAIIB Input bias current Full range 90 90 90 nA 25°C to 15.3 to to 15.3 to to 15.3 to VICR Common-mode input R S =5 0Ω 13.5 14 13.5 14 13.5 14 VVICR voltage range R S = 50 Ω –15 –15 –15 V Full range to to tog 13.5 13.5 13.5 VOM Maximum positive peak 25°C 14 14.3 14 14.3 14 14.3 VVOM + output voltage swing R L =1 0kΩ Full range 13.9 13.9 13.9 V VOM Maximum negative peak R L = 10 kΩ VVOM– g output voltage swing Full range –13.7 –13.7 –13.7 V AVD Large-signal differential VO = ± 10 V R L =1 0kΩ 25°C 0.8 4 1 7 1.5 10 V/µVAVD gg voltage amplification VO = ± 10 V, R L = 10 kΩ Full range 0.8 1 1.5 V/µV CMRR Common mode rejection ratioVIC =V ICRmin R S =5 0Ω 25°C 95 106 97 109 100 112 dBCMRR Common -mode rejection ratio VIC = VICRmin, R S = 50 Ω Full range 91 93 96 dB k Supply-voltage rejection ratioVCC ± = ± 25Vt o ± 15 V 25°C 100 115 103 118 105 120 dBkSVR yg j (ΔVCC ± /ΔVIO) VCC ± = ± 2.5 V to ± 15 V Full range 95 98 100 dB ICC Supply current 25°C 550 700 550 700 550 700 µAICC Supply current VO =0 No load Full range 700 700 700 µA ΔICC Supply current change over VO = 0, No load Full range 9 9 9 µAΔICC yg operating temperature range Full range 9 9 9 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 Temp late R elease D ate: 7–11–94
14 POST OFFICE BOX 655303 DALLAS, TEXAS 75265•
TLE2024 electrical characteristics at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2024C TLE2024AC TLE2024BC UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 1100 850 600 µVVIO Input offset voltage Full range 1300 1050 800 µV α VIO Temperature coefficient of input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, R S = 50 Ω 25°C 0.005 0.005 0.005 µV/mo IIO Input offset current 25°C 0.6 6 0.5 6 0.4 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 45 70 40 70 35 70 nAIIB Input bias current Full range 90 90 90 nA VICR Common-mode input voltage R S =5 0Ω 25°C to 3.5 –0.3 to to 3.5 –0.3 to to 3.5 –0.3 to VVICR g range R S = 50 Ω Full range to 3.5 to 3.5 to 3.5 V VOH High level output voltage VVOH High-level output voltage R L =1 0kΩ Full range 3.7 3.7 3.8 V VOL Low level output voltage R L = 10 kΩ VVOL Low-level output voltage Full range 0.95 0.95 0.95 V AVD Large-signal differential VO =14Vt o4V R L =1 0kΩ V/µVAVD gg voltage amplification VO = 1.4 V to 4 V, R L = 10 kΩ Full range 0.1 0.1 0.1 V/µV CMRR Common mode rejection ratioVIC =V ICRmin R S =5 0Ω 25°C 80 90 82 92 85 95 dBCMRR Common -mode rejection ratio VIC = VICRmin, R S = 50 Ω Full range 80 82 85 dB kSVR Supply-voltage rejection ratioVCC =5Vt o3 0V 25°C 98 112 100 115 103 117 dBkSVR yg j (ΔVCC /ΔVIO) VCC = 5 V to 30 V Full range 93 95 98 dB ICC Supply current 25°C 800 1200 800 1200 800 1200 µAICC Supply current VO =25V No load Full range 1200 1200 1200 µA ΔICC Supply current change over operating temperature range VO = 2.5 V, No load Full range 15 15 15 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 POST OFFICE BOX 655303 DALLAS, TEXAS 75265• 15 TLE2024 electrical characteristics at specified free-air temperature, VCC = ± 15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2024C TLE2024AC TLE2024BC UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 1000 750 500 µVVIO Input offset voltage Full range 1200 950 700 µV α VIO Temperature coefficient of input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, R S = 50 Ω 25°C 0.006 0.006 0.006 µV/mo IIO Input offset current 25°C 0.6 6 0.5 6 0.4 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 50 70 45 70 40 70 nAIIB Input bias current Full range 90 90 90 nA VICR Common-mode input voltage R S =5 0Ω 25°C –15 to 13.5 –15.3 to –15 to 13.5 –15.3 to –15 to 13.5 –15.3 to VVICR g range R S = 50 Ω Full range –15 to 13.5 –15 to 13.5 –15 to 13.5 V VOM VVOM+ voltage swing R L =1 0kΩ Full range 13.7 13.8 13.9 V VOM Maximum negative peak output R L = 10 kΩ VVOM– g voltage swing Full range –13.6 –13.6 –13.6 V AVD Large-signal differential VO = ± 10 V R L =1 0kΩ 25°C 0.4 2 0.8 4 1 7 V/µVAVD gg voltage amplification VO = ± 10 V, R L = 10 kΩ Full range 0.4 0.8 1 V/µV CMRR Common mode rejection ratio VIC =V ICRmin R S =5 0Ω 25°C 92 102 94 105 97 108 dBCMRR Common -mode rejection ratio VIC = VICRmin, R S = 50 Ω Full range 88 90 93 dB kSVR Supply-voltage rejection ratioVCC ± = ± 25Vt o ± 15 V 25°C 98 112 100 115 103 117 dBkSVR yg j (ΔVCC ± /ΔVIO) VCC ± = ± 2.5 V to ± 15 V Full range 93 95 98 dB ICC Supply current 25°C 1050 1400 1050 1400 1050 1400 µAICC Supply current VO =0 No load Full range 1400 1400 1400 µA ΔICC Supply current change over VO = 0, No load Full range 20 20 20 µAΔICC yg operating temperature range Full range 20 20 20 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 Temp late R elease D ate: 7–11–94
16 POST OFFICE BOX 655303 DALLAS, TEXAS 75265•
TLE2021 electrical characteristics at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2021I TLE2021AI TLE2021BI UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 120 600 100 300 80 200 µVVIO Input offset voltage Full range 950 600 300 µV α VIO Temperature coefficient of input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, RS = 50 Ω 25°C 0.005 0.005 0.005 µV/mo IIO Input offset current 25°C 0.2 6 0.2 6 0.2 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 25 70 25 70 25 70 nAIIB Input bias current Full range 90 90 90 nA VICR Common mode input voltage range R S =5 0Ω 25°C to 3.5 –0.3 to to 3.5 –0.3 to to 3.5 – 0.3 to VVICR Common -mode input voltage range R S = 50 Ω Full range –15 to 3.2 to 3.2 to 3.2 V VOH High level output voltage 25°C 4 4.3 4 4.3 4 4.3 VVOH High-level output voltage R L =1 0kΩ Full range 3.9 3.9 3.9 V VOL Low level output voltage R L = 10 kΩ VVOL Low-level output voltage Full range 0.9 0.9 0.9 V AVD V/µVAVD gg voltage amplification O , R L = 10 kΩ Full range 0.25 0.25 0.25 V/µV CMRR Common mode rejection ratio VIC = VICR min, 25°C 85 110 85 110 85 110 dBCMRR Common -mode rejection ratio IC ICR , R S = 50 Ω Full range 80 80 80 dB kSVR Supply-voltage rejection ratio VCC =5Vt o3 0V 25°C 105 120 105 120 105 120 dBkSVR yg j (ΔVCC /ΔVIO) VCC = 5 V to 30 V Full range 100 100 100 dB ICC Supply current 25°C 170 230 170 230 170 230 µAICC Supply current VO = 2.5 V, Full range 230 230 230 µA ΔICC Supply-current change over operating temperature range No load Full range 6 6 6 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 POST OFFICE BOX 655303 DALLAS, TEXAS 75265• 17 TLE2021 electrical characteristics at specified free-air temperature, VCC = ± 15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2021I TLE2021AI TLE2021BI UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 120 500 80 200 40 100 µVVIO Input offset voltage Full range 850 500 200 µV α VIO Temperature coefficient of input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, RS = 50 Ω 25°C 0.006 0.006 0.006 µV/mo IIO Input offset current 25°C 0.2 6 0.2 6 0.2 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 25 70 25 70 25 70 nAIIB Input bias current Full range 90 90 90 nA VICR Common-mode input voltage range R S =5 0Ω 25°C –15 to 13.5 –15.3 to –15 to 13.5 –15.3 to –15 to 13.5 –15.3 to VVICR gg R S = 50 Ω Full range –15 to 3.2 to 3.2 to 3.2 V VOM Maximum positive peak output 25°C 14 14.3 14 14.3 14 14.3 VVOM + voltage swing R L =1 0kΩ Full range 13.9 13.9 13.9 V VOM Maximum negative peak output R L = 10 kΩ VVOM – g voltage swing Full range–13.6 –13.6 –13.6 V AVD Large-signal differential VO =1 0 V , 25°C 1 6.5 1 6.5 1 6.5 V/µVAVD gg voltage amplification O , R L = 10 kΩ Full range 0.75 0.75 0.75 V/µV CMRR Common mode rejection ratio VIC = VICR min, 25°C 100 115 100 115 100 115 dBCMRR Common -mode rejection ratio IC ICR , R S = 50 Ω Full range 96 96 96 dB kSVR Supply-voltage rejection ratio VCC ± = ± 2. 5 V 25°C 105 120 105 120 105 120 dBkSVR yg j (ΔVCC /ΔVIO) CC ± to ± 15 V Full range 100 100 100 dB ICC Supply current 25°C 200 300 200 300 200 300 µAICC Supply current VO = 0 V No load Full range 300 300 300 µA ΔICC Supply-current change over operating temperature range VO = 0 V,No load Full range 7 7 7 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 Temp late R elease D ate: 7–11–94
18 POST OFFICE BOX 655303 DALLAS, TEXAS 75265•
TLE2022 electrical characteristics at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2022I TLE2022AI TLE2022BI UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 600 400 250 µVVIO Input offset voltage Full range 800 550 400 µV Temperature coefficient of Full range 2 2 2 µV/°Cα VIO input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-term V0 R5 0 Ω 25°C 0 005 0 005 0 005 µV/mogg drift (see Note 4) VIC = 0, R S = 50 Ω 25°C 0.005 0.005 0.005 µV/mo IIO Input offset current 25°C 0.5 6 0.4 6 0.3 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 35 70 33 70 30 70 nAIIB Input bias current Full range 90 90 90 nA 25°C to 0.3 to to 0.3 to to 0.3 to VICR Common-mode input R S =5 0Ω 3.5 4 3.5 4 3.5 4 VVICR voltage range R S = 50 Ω 0 0 0 V Full range to to tog 3.2 3.2 3.2 VOH High level output voltage 25°C 4 4.3 4 4.3 4 4.3 VVOH High-level output voltage R L =1 0kΩ Full range 3.9 3.9 3.9 V VOL Low level output voltage R L = 10 kΩ VVOL Low-level output voltage Full range 0.9 0.9 0.9 V AVD Large-signal differential VO =14Vt o4V R L =1 0kΩ V/µVAVD gg voltage amplification VO = 1.4 V to 4 V, R L = 10 kΩ Full range 0.2 0.2 0.2 V/µV CMRR Common mode rejection ratioVIC =V ICRmin R S =5 0Ω 25°C 85 100 87 102 90 105 dBCMRR Common -mode rejection ratio VIC = VICRmin, R S = 50 Ω Full range 80 82 85 dB k Supply-voltage rejection ratioVCC =5Vt o3 0V 25°C 100 115 103 118 105 120 dBkSVR yg j (ΔVCC ± /ΔVIO) VCC = 5 V to 30 V Full range 95 98 100 dB ICC Supply current 25°C 450 600 450 600 450 600 µAICC Supply current VO =25V No load Full range 600 600 600 µA ΔICC Supply current change over VO = 2.5 V, No load Full range 15 15 15 µAΔICC yg operating temperature range Full range 15 15 15 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 POST OFFICE BOX 655303 DALLAS, TEXAS 75265• 19 TLE2022 electrical characteristics at specified free-air temperature, VCC = ± 15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2022I TLE2022AI TLE2022BI UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 150 500 120 300 70 150 µVVIO Input offset voltage Full range 700 450 300 µV Temperature coefficient of Full range 2 2 2 µV/°Cα VIO input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-termV0 R5 0 Ω 25°C 0 006 0 006 0 006 µV/mogg drift (see Note 4) VIC = 0, R S = 50 Ω 25°C 0.006 0.006 0.006 µV/mo IIO Input offset current 25°C 0.5 6 0.4 6 0.3 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 35 70 33 70 30 70 nAIIB Input bias current Full range 90 90 90 nA 25°C to to to to to to VICR Common-mode input R S =5 0Ω 13.5 14 13.5 14 13.5 14 VVICR voltage range R S = 50 Ω –1 5 –1 5 –1 5 Vgg Full range to to tog 13.2 13.2 13.2 VOM Maximum positive peak 25°C 14 14.3 14 14.3 14 14.3 VVOM + output voltage swing R L =1 0kΩ Full range 13.9 13.9 13.9 V VOM Maximum negative peak R L = 10 kΩ VVOM – g output voltage swing Full range – 13.6 – 13.6 – 13.6 V AVD Large-signal differential VO = ± 10 V R L =1 0kΩ 25°C 0.8 4 1 7 1.5 10 V/µVAVD gg voltage amplification VO = ± 10 V, R L = 10 kΩ Full range 0.8 1 1.5 V/µV CMRR Common mode rejection ratioVIC =V ICRmin R S =5 0Ω 25°C 95 106 97 109 100 112 dBCMRR Common -mode rejection ratio VIC = VICRmin, R S = 50 Ω Full range 91 93 96 dB kSVR Supply-voltage rejection ratioVCC = ± 25Vt o ± 15 V 25°C 100 115 103 118 105 120 dBkSVR yg j (ΔVCC ± /ΔVIO) VCC = ± 2.5 V to ± 15 V Full range 95 98 100 dB ICC Supply current 25°C 550 700 550 700 550 700 µAICC Supply current VO =0 No load Full range 700 700 700 µA ΔICC Supply current change over VO = 0, No load Full range 30 30 30 µAΔICC yg operating temperature range Full range 30 30 30 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 Temp late R elease D ate: 7–11–94
20 POST OFFICE BOX 655303 DALLAS, TEXAS 75265•
TLE2024 electrical characteristics at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2024I TLE2024AI TLE2024BI UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 1100 850 600 µVVIO Input offset voltage Full range 1300 1050 800 µV α VIO Temperature coefficient of input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, R S = 50 Ω 25°C 0.005 0.005 0.005 µV/mo IIO Input offset current 25°C 0.6 6 0.5 6 0.4 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 45 70 40 70 35 70 nAIIB Input bias current Full range 90 90 90 nA VICR Common-mode input voltage R S =5 0Ω 25°C to 3.5 –0.3 to to 3.5 –0.3 to to 3.5 –0.3 to VVICR g range R S = 50 Ω Full range to 3.2 to 3.2 to 3.2 V VOM VVOM+ output voltage swing R L =1 0kΩ Full range 3.7 3.7 3.8 V VOM Maximum negative peak R L = 10 kΩ VVOM– g output voltage swing Full range 0.95 0.95 0.95 V AVD Large-signal differential VO =14Vt o4V R L =1 0kΩ V/µVAVD gg voltage amplification VO = 1.4 V to 4 V, R L = 10 kΩ Full range 0.1 0.1 0.1 V/µV CMRR Common mode rejection ratioVIC =V ICRmin R S =5 0Ω 25°C 80 90 82 92 85 95 dBCMRR Common -mode rejection ratio VIC = VICRmin, R S = 50 Ω Full range 80 82 85 dB kSVR Supply-voltage rejection ratioVCC ± = ± 25Vt o ± 15 V 25°C 98 112 100 115 103 117 dBkSVR yg j (ΔVCC ± /ΔVIO) VCC ± = ± 2.5 V to ± 15 V Full range 93 95 98 dB ICC Supply current 25°C 800 1200 800 1200 800 1200 µAICC Supply current VO =0 No load Full range 1200 1200 1200 µA ΔICC Supply current change over operating temperature range VO = 0, No load Full range 30 30 30 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 POST OFFICE BOX 655303 DALLAS, TEXAS 75265• 21 TLE2024 electrical characteristics at specified free-air temperature, VCC = ± 15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2024I TLE2024AI TLE2024BI UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 1000 750 500 µVVIO Input offset voltage Full range 1200 950 700 µV α VIO Temperature coefficient of input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, R S = 50 Ω 25°C 0.006 0.006 0.006 µV/mo IIO Input offset current 25°C 0.6 6 0.5 6 0.4 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 50 70 45 70 40 70 nAIIB Input bias current Full range 90 90 90 nA VICR Common-mode input voltage R S =5 0Ω 25°C –15 to 13.5 –15.3 to –15 to 13.5 –15.3 to –15 to 13.5 –15.3 to VVICR g range R S = 50 Ω Full range –15 to 13.2 –15 to 13.2 –15 to 13.2 V VOM VVOM+ voltage swing R L =1 0kΩ Full range 13.7 13.7 13.8 V VOM Maximum negative peak output R L = 10 kΩ VVOM– g voltage swing Full range –13.6 –13.6 –13.6 V AVD Large-signal differential VO = ± 10 V R L =1 0kΩ 25°C 0.4 2 0.8 4 1 7 V/µVAVD gg voltage amplification VO = ± 10 V, R L = 10 kΩ Full range 0.4 0.8 1 V/µV CMRR Common mode rejection ratio VIC =V ICRmin R S =5 0Ω 25°C 92 102 94 105 97 108 dBCMRR Common -mode rejection ratio VIC = VICRmin, R S = 50 Ω Full range 88 90 93 dB kSVR Supply-voltage rejection ratioVCC ± = ± 25Vt o ± 15 V 25°C 98 112 100 115 103 117 dBkSVR yg j (ΔVCC ± /ΔVIO) VCC ± = ± 2.5 V to ± 15 V Full range 93 95 98 dB ICC Supply current 25°C 1050 1400 1050 1400 1050 1400 µAICC Supply current VO =0 No load Full range 1400 1400 1400 µA ΔICC Supply current change over VO = 0, No load Full range 50 50 50 µAΔICC yg operating temperature range Full range 50 50 50 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 Temp late R elease D ate: 7–11–94
22 POST OFFICE BOX 655303 DALLAS, TEXAS 75265•
TLE2021 electrical characteristics at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS T † TLE2021M TLE2021AM TLE2021BM UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 120 600 100 300 80 200 µVVIO Input offset voltage Full range 1100 600 300 µV α VIO Temperature coefficient of input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, R S = 50 Ω 25°C 0.005 0.005 0.005 µV/mo IIO Input offset current 25°C 0.2 6 0.2 6 0.2 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 25 70 25 70 25 70 nAIIB Input bias current Full range 90 90 90 nA VICR Common-mode input R S =5 0Ω 25°C to 3.5 –0.3 to to 3.5 –0.3 to to 3.5 –0.3 to VVICR voltage range R S = 50 Ω Full range to 3.2 to 3.2 to 3.2 V VOH High level output voltage 25°C 4 4.3 4 4.3 4 4.3 VVOH High-level output voltage R L =1 0kΩ Full range 3.8 3.8 3.8 V VOL Low level output voltage R L = 10 kΩ VVOL Low-level output voltage Full range 0.95 0.95 0.95 V AVD Large-signal differential VO =14Vt o4V R L =1 0kΩ V/µVAVD gg voltage amplification VO = 1.4 V to 4 V, R L = 10 kΩ Full range 0.1 0.1 0.1 V/µV CMRR Common mode rejection ratioVIC =V ICRmin R S =5 0Ω 25°C 85 110 85 110 85 110 dBCMRR Common -mode rejection ratio VIC = VICRmin, R S = 50 Ω Full range 80 80 80 dB kSVR Supply-voltage rejection ratioVCC =5Vt o3 0V 25°C 105 120 105 120 105 120 dBkSVR yg j (ΔVCC ± /ΔVIO) VCC = 5 V to 30 V Full range 100 100 100 dB ICC Supply current 25°C 170 230 170 230 170 230 µAICC Supply current VO =25V No load Full range 230 230 230 µA ΔICC Supply current change over operating temperature range VO = 2.5 V, No load Full range 9 9 9 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 POST OFFICE BOX 655303 DALLAS, TEXAS 75265• 23 TLE2021 electrical characteristics at specified free-air temperature, VCC = ±15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2021M TLE2021AM TLE2021BM UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 120 500 80 200 40 100 µVVIO Input offset voltage Full range 1000 500 200 µV α VIO Temperature coefficient of input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, R S = 50 Ω 25°C 0.006 0.006 0.006 µV/mo IIO Input offset current 25°C 0.2 6 0.2 6 0.2 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 25 70 25 70 25 70 nAIIB Input bias current Full range 90 90 90 nA VICR Common-mode input R S =5 0Ω 25°C –15 to 13.5 –15.3 to –15 to 13.5 –15.3 to –15 to 13.5 –15.3 to VVICR voltage range R S = 50 Ω Full range –15 to 13.2 –15 to 13.2 to 13.2 V VOM Maximum positive peak 25°C 14 14.3 14 14.3 14 14.3 VVOM+ output voltage swing R L =1 0kΩ Full range 13.8 13.8 13.8 V VOM Maximum negative peak R L = 10 kΩ VVOM – g output voltage swing Full range–13.6 –13.6 –13.6 V AVD Large-signal differential VO = ± 10 V R L =1 0kΩ 25°C 1 6.5 1 6.5 1 6.5 V/µVAVD gg voltage amplification VO = ± 10 V, R L = 10 kΩ Full range 0.5 0.5 0.5 V/µV CMRR Common mode rejection ratioVIC =V ICRmin R S =5 0Ω 25°C 100 115 100 115 100 115 dBCMRR Common -mode rejection ratio VIC = VICRmin, R S = 50 Ω Full range 96 96 96 dB kSVR Supply-voltage rejection ratioVCC ± = ± 25Vt o ± 15 V 25°C 105 120 105 120 105 120 dBkSVR yg j (ΔVCC ± /ΔVIO) VCC ± = ± 2.5 V to ± 15 V Full range 100 100 100 dB ICC Supply current 25°C 200 300 200 300 200 300 µAICC Supply current VO =0 No load Full range 300 300 300 µA ΔICC Supply current change over operating temperature range VO = 0, No load Full range 10 10 10 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 Temp late R elease D ate: 7–11–94
24 POST OFFICE BOX 655303 DALLAS, TEXAS 75265•
TLE2022 electrical characteristics at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2022M TLE2022AM TLE2022BM UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 600 400 250 µVVIO Input offset voltage Full range 800 550 400 µV Temperature coefficient of Full range 2 2 2 µV/°Cα VIO input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-term V0 R5 0 Ω 25°C 0 005 0 005 0 005 µV/mogg drift (see Note 4) VIC = 0, R S = 50 Ω 25°C 0.005 0.005 0.005 µV/mo IIO Input offset current 25°C 0.5 6 0.4 6 0.3 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 35 70 33 70 30 70 nAIIB Input bias current Full range 90 90 90 nA 25°C to to to to to to VICR Common-mode input R S =5 0Ω 3.5 4 3.5 4 3.5 4 VVICR voltage range R S = 50 Ω 0 0 0 Vgg Full range to to tog 3.2 3.2 3.2 VOH High level output voltage 25°C 4 4.3 4 4.3 4 4.3 VVOH High-level output voltage R L =1 0kΩ Full range 3.8 3.8 3.8 V VOL Low level output voltage R L = 10 kΩ VVOL Low-level output voltage Full range 0.95 0.95 0.95 V AVD Large-signal differential VO =14Vt o4V R L =1 0kΩ V/µVAVD gg voltage amplification VO = 1.4 V to 4 V, R L = 10 kΩ Full range 0.1 0.1 0.1 V/µV CMRR Common mode rejection ratioVIC =V ICRmin R S =5 0Ω 25°C 85 100 87 102 90 105 dBCMRR Common -mode rejection ratio VIC = VICRmin, R S = 50 Ω Full range 80 82 85 dB kSVR Supply-voltage rejection ratioVCC =5Vt o3 0V 25°C 100 115 103 118 105 120 dBkSVR yg j (ΔVCC ± /ΔVIO) VCC = 5 V to 30 V Full range 95 98 100 dB ICC Supply current 25°C 450 600 450 600 450 600 µAICC Supply current VO =25V No load Full range 600 600 600 µA ΔICC Supply current change over VO = 2.5 V, No load Full range 37 37 37 µAΔICC yg operating temperature range Full range 37 37 37 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 POST OFFICE BOX 655303 DALLAS, TEXAS 75265• 25 TLE2022 electrical characteristics at specified free-air temperature, VCC =± 15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2022M TLE2022AM TLE2022BM UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 150 500 120 300 70 150 µVVIO Input offset voltage Full range 700 450 300 µV α VIO Temperature coefficient of Full range 2 2 2 µV/°Cα VIO input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-termV0 R5 0 Ω 25°C 0 006 0 006 0 006 µV/mogg drift (see Note 4) VIC = 0, R S = 50 Ω 25°C 0.006 0.006 0.006 µV/mo IIO Input offset current 25°C 0.5 6 0.4 6 0.3 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 35 70 33 70 30 70 nAIIB Input bias current Full range 90 90 90 nA 25°C to to to to to to VICR Common-mode input R S =5 0Ω 13.5 14 13.5 14 13.5 14 VVICR voltage range R S = 50 Ω –15 –15 –15 Vgg Full range to to tog 13.2 13.2 13.2 VOM Maximum positive peak 25°C 14 14.3 14 14.3 14 14.3 VVOM + output voltage swing R L =1 0kΩ Full range 13.9 13.9 13.9 V VOM Maximum negative peak R L = 10 kΩ VVOM– g output voltage swing Full range –13.6 –13.6 –13.6 V AVD Large-signal differential VO = ± 10 V R L =1 0kΩ 25°C 0.8 4 1 7 1.5 10 V/µVAVD gg voltage amplification VO = ± 10 V, R L = 10 kΩ Full range 0.8 1 1.5 V/µV CMRR Common mode rejection ratioVIC =V ICRmin R S =5 0Ω 25°C 95 106 97 109 100 112 dBCMRR Common -mode rejection ratio VIC = VICRmin, R S = 50 Ω Full range 91 93 96 dB kSVR Supply-voltage rejection ratioVCC ± = ± 25Vt o ± 15 V 25°C 100 115 103 118 105 120 dBkSVR yg j (ΔVCC ± /ΔVIO) VCC ± = ± 2.5 V to ± 15 V Full range 95 98 100 dB ICC Supply current 25°C 550 700 550 700 550 700 µAICC Supply current VO =0 No load Full range 700 700 700 µA ΔICC Supply current change over VO = 0, No load Full range 60 60 60 µAΔICC yg operating temperature range Full range 60 60 60 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 Temp late R elease D ate: 7–11–94
26 POST OFFICE BOX 655303 DALLAS, TEXAS 75265•
TLE2024 electrical characteristics at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2024M TLE2024AM TLE2024BM UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 1100 850 600 µVVIO Input offset voltage Full range 1300 1050 800 µV α VIO Temperature coefficient of input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, R S = 50 Ω 25°C 0.005 0.005 0.005 µV/mo IIO Input offset current 25°C 0.6 6 0.5 6 0.4 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 45 70 40 70 35 70 nAIIB Input bias current Full range 90 90 90 nA VICR Common-mode input voltage R S =5 0Ω 25°C to 3.5 –0.3 to to 3.5 –0.3 to to 3.5 –0.3 to VVICR g range R S = 50 Ω Full range to 3.2 to 3.2 to 3.2 V VOM VVOM+ output voltage swing R L =1 0kΩ Full range 3.7 3.7 3.8 V VOM Maximum negative peak R L = 10 kΩ VVOM– g output voltage swing Full range 0.95 0.95 0.95 V AVD Large-signal differential VO =14Vt o4V R L =1 0kΩ V/µVAVD gg voltage amplification VO = 1.4 V to 4 V, R L = 10 kΩ Full range 0.1 0.1 0.1 V/µV CMRR Common mode rejection ratioVIC =V ICRmin R S =5 0Ω 25°C 80 90 82 92 85 95 dBCMRR Common -mode rejection ratio VIC = VICRmin, R S = 50 Ω Full range 80 82 85 dB kSVR Supply-voltage rejection ratioVCC ± = ± 25Vt o ± 15 V 25°C 98 112 100 115 103 117 dBkSVR yg j (ΔVCC ± /ΔVIO) VCC ± = ± 2.5 V to ± 15 V Full range 93 95 98 dB ICC Supply current 25°C 800 1200 800 1200 800 1200 µAICC Supply current VO =0 No load Full range 1200 1200 1200 µA ΔICC Supply current change over operating temperature range VO = 0, No load Full range 50 50 50 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 POST OFFICE BOX 655303 DALLAS, TEXAS 75265• 27 TLE2024 electrical characteristics at specified free-air temperature, VCC = ± 15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2024M TLE2024AM TLE2024BM UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 1000 750 500 µVVIO Input offset voltage Full range 1200 950 700 µV α VIO Temperature coefficient of input offset voltage Full range 2 2 2 µV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, R S = 50 Ω 25°C 0.006 0.006 0.006 µV/mo IIO Input offset current 25°C 0.6 6 0.5 6 0.4 6 nAIIO Input offset current Full range 10 10 10 nA IIB Input bias current 25°C 50 70 45 70 40 70 nAIIB Input bias current Full range 90 90 90 nA VICR Common-mode input voltage R S =5 0Ω 25°C –15 to 13.5 –15.3 to –15 to 13.5 –15.3 to –15 to 13.5 –15.3 to VVICR g range R S = 50 Ω Full range –15 to 13.2 –15 to 13.2 –15 to 13.2 V VOM VVOM+ voltage swing R L =1 0kΩ Full range 13.7 13.7 13.8 V VOM Maximum negative peak output R L = 10 kΩ VVOM– g voltage swing Full range –13.6 –13.6 –13.6 V AVD Large-signal differential VO = ± 10 V R L =1 0kΩ 25°C 0.4 2 0.8 4 1 7 V/µVAVD gg voltage amplification VO = ± 10 V, R L = 10 kΩ Full range 0.4 0.8 1 V/µV CMRR Common mode rejection ratio VIC =V ICRmin R S =5 0Ω 25°C 92 102 94 105 97 108 dBCMRR Common -mode rejection ratio VIC = VICRmin, R S = 50 Ω Full range 88 90 93 dB kSVR Supply-voltage rejection ratioVCC ± = ± 25Vt o ± 15 V 25°C 98 112 100 115 103 117 dBkSVR yg j (ΔVCC ± /ΔVIO) VCC ± = ± 2.5 V to ± 15 V Full range 93 95 98 dB ICC Supply current 25°C 1050 1400 1050 1400 1050 1400 µAICC Supply current VO =0 No load Full range 1400 1400 1400 µA ΔICC Supply current change over VO = 0, No load Full range 85 85 85 µAΔICC yg operating temperature range Full range 85 85 85 µA † 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 Temp late R elease D ate: 7–11–94
28 POST OFFICE BOX 655303 DALLAS, TEXAS 75265•
TLE2021 operating characteristics, VCC = 5 V, TA = 25°C PARAMETER TEST CONDITIONS TA C SUFFIX I SUFFIX M SUFFIX UNITPARAMETER TEST CONDITIONS TA MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT SR Slew rate at unity gain VO = 1 V to 3 V,See Figure 1 25°C 0.5 0.5 0.5 V/µs V Equivalent input noise voltage f = 10 Hz 25°C 21 50 21 50 21 nV/HzVn qg (see Figure 2) f = 1 kHz 25°C 17 30 17 30 17 nV/Hz VN(PP) Peak-to-peak equivalent inputf = 0.1 to 1 Hz 25°C 0.16 0.16 0.16 µVVN(PP) q noise voltage f = 0.1 to 10 Hz 25°C 0.47 0.47 0.47 µV In Equivalent input noise current 25°C 0.09 0.09 0.9 pA/Hz B1 Unity-gain bandwidth See Figure 3 25°C 1.2 1.2 1.2 MHz φm Phase margin at unity gain See Figure 3 25°C 42° 42° 42° TLE2021 operating characteristics at specified free-air temperature, VCC = ± 15 V PARAMETER TEST CONDITIONS T † C SUFFIX I SUFFIX M SUFFIX UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT SR Slew rate at unity gain VO =1 Vt o3V See Figure 1 V/µsSR Slew rate at unity gain VO = 1V to 3 V, See Figure 1 Full range 0.45 0.42 0.45 V/µs V Equivalent input noise voltage f = 10 Hz 25°C 19 50 19 50 19 nV/HzVn qg (see Figure 2) f = 1 kHz 25°C 15 30 15 30 15 nV/Hz VN(PP) Peak-to-peak equivalent inputf = 0.1 to 1 Hz 25°C 0.16 0.16 0.16 µVVN(PP) q noise voltage f = 0.1 to 10 Hz 25°C 0.47 0.47 0.47 µV In Equivalent input noise current 25°C 0.09 0.09 0.09 pA/Hz B1 Unity-gain bandwidth See Figure 3 25°C 2 2 2 MHz φm Phase margin at unity gain See Figure 3 25°C 46° 46° 46° † Full range is 0°C to 70°C for the C-suffix devices, –40°C to 85°C for the I-suffix devices, and –55°C to 125°C for the M-suffix devices.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 POST OFFICE BOX 655303 DALLAS, TEXAS 75265• 29 TLE2022 operating characteristics, VCC = 5 V, TA = 25°C PARAMETER TEST CONDITIONS C SUFFIX I SUFFIX M SUFFIX UNITPARAMETER TEST CONDITIONS MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT SR Slew rate at unity gain VO = 1 V to 3 V,See Figure 1 0.5 0.5 0.5 V/µs V Equivalent input noise voltage f = 10 Hz 21 50 21 50 21 nV/√HzVn qg (see Figure 2) f = 1 kHz 17 30 17 30 17 nV/√H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 0.16 0.16 0.16 µVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 0.47 0.47 0.47 µV In Equivalent input noise current 0.1 0.1 0.1 pA/√Hz B1 Unity-gain bandwidth See Figure 3 1.7 1.7 1.7 MHz φm Phase margin at unity gain See Figure 3 47° 47° 47° TLE2022 operating characteristics at specified free-air temperature, VCC = ± 15 V PARAMETER TEST CONDITIONS TA † C SUFFIX I SUFFIX M SUFFIX UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT SR Slew rate at unity gain VO = ± 10 V See Figure 1 V/µsSR Slew rate at unity gain VO = ± 10 V, See Figure 1 Full range 0.45 0.42 0.4 V/µs V Equivalent input noise f = 10 Hz 25°C 19 50 19 50 19 nV/√HzVn q voltage (see Figure 2) f = 1 kHz 25°C 15 30 15 30 15 nV/√H z VN(PP) Peak-to-peak equivalent f = 0.1 to 1 Hz 25°C 0.16 0.16 0.16 µVVN(PP) q input noise voltage f = 0.1 to 10 Hz 25°C 0.47 0.47 0.47 µV In Equivalent input noise current 25°C 0.1 0.1 0.1 pA/√Hz B1 Unity-gain bandwidth See Figure 3 25°C 2.8 2.8 2.8 MHz φm Phase margin at unity gain See Figure 3 25°C 52° 52° 52° † Full range is 0°C to 70°C.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 Temp late R elease D ate: 7–11–94
30 POST OFFICE BOX 655303 DALLAS, TEXAS 75265•
TLE2024 operating characteristics, VCC = 5 V, TA = 25°C PARAMETER TEST CONDITIONS C SUFFIX I SUFFIX M SUFFIX UNITPARAMETER TEST CONDITIONS MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT SR Slew rate at unity gain VO = 1 V to 3 V,See Figure 1 0.5 0.5 0.5 V/µs V Equivalent input noise voltage (see Figure 2) f = 10 Hz 21 50 21 50 21 nV/√ HzVn Equivalent input noise voltage (see Figure 2) f = 1 kHz 17 30 17 30 17 nV/√ H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 0.16 0.16 0.16 µVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 0.47 0.47 0.47 µV In Equivalent input noise current 0.1 0.1 0.1 pA/√Hz B1 Unity-gain bandwidth See Figure 3 1.7 1.7 1.7 MHz φm Phase margin at unity gain See Figure 3 47° 47° 47° TLE2024 operating characteristics at specified free-air temperature, VCC = ± 15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † C SUFFIX I SUFFIX M SUFFIX UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX MIN TYP MAX UNIT SR Slew rate at unity gain VO = ± 10 V See Figure 1 V/µsSR Slew rate at unity gain VO = ± 10 V, See Figure 1 Full range 0.45 0.42 0.4 V/µs V Equivalent input noise voltage f = 10 Hz 25°C 19 50 19 50 19 nV/√HzVn qg (see Figure 2) f = 1 kHz 25°C 15 30 15 30 15 nV/√H z VN(PP) Peak-to-peak equivalent input noisef = 0.1 to 1 Hz 25°C 0.16 0.16 0.16 µVVN(PP) q voltage f = 0.1 to 10 Hz 25°C 0.47 0.47 0.47 µV In Equivalent input noise current 25°C 0.1 0.1 0.1 pA/√Hz B1 Unity-gain bandwidth See Figure 3 25°C 2.8 2.8 2.8 MHz φm Phase margin at unity gain See Figure 3 25°C 52° 52° 52° † Full range is 0°C to 70°C.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 31POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLE2021Y electrical characteristics at VCC = 5 V, TA = 25°C (unless otherwise noted) PARAMETER TEST CONDITIONS TLE2021Y UNITPARAMETER TEST CONDITIONS MIN TYP MAX UNIT VIO Input offset voltage 150 µV Input offset voltage long-term drift (see Note 4) VIC =0 R S =5 0Ω 0.005 µV/mo IIO Input offset current VIC = 0, R S = 50 Ω 0.5 nA IIB Input bias current 35 nA VICR Common-mode input voltage range R S = 50 Ω – 0.3 to V VOH Maximum high-level output voltage R L =1 0kΩ 4.3 V VOL Maximum low-level output voltage R L = 10 kΩ 0.7 V AVD Large-signal differential voltage amplification VO = 1.4 to 4 V,R L = 10 kΩ 1.5 V/µV CMRR Common-mode rejection ratio VIC = VICR min, R S = 50 Ω 100 dB kSVR Supply-voltage rejection ratio (ΔVCC ± /ΔVIO) VCC = 5 V to 30 V 115 dB ICC Supply current VO = 2.5 V, No load 400 µA 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. TLE2021Y operating characteristics at VCC = 5 V, TA = 25°C PARAMETER TEST CONDITIONS TLE2021Y UNITPARAMETER TEST CONDITIONS MIN TYP MAX UNIT SR Slew rate at unity gain VO = 1 V to 3 V 0.5 V/µs V Equivalent input noise voltage f = 10 Hz 21 nV/√HzVn Equivalent input noise voltage f = 1 kHz 17 nV/√H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 0.16 µVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 0.47 µV In Equivalent input noise current 0.1 pA/√Hz B1 Unity-gain bandwidth 1.7 MHz φm Phase margin at unity gain 47°
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
32 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TLE2022Y electrical characteristics, VCC = 5 V, TA = 25°C (unless otherwise noted) PARAMETER TEST CONDITIONS TLE2022Y UNITPARAMETER TEST CONDITIONS MIN TYP MAX UNIT VIO Input offset voltage 150 600 µV Input offset voltage long-term drift (see Note 4) VIC =0 R S =5 0Ω 0.005 µV/mo IIO Input offset current VIC = 0, R S = 50 Ω 0.5 nA IIB Input bias current 35 nA VICR Common-mode input voltage range R S = 50 Ω – 0.3 to V VOH Maximum high-level output voltage R L =1 0kΩ 4.3 V VOL Maximum low-level output voltage R L = 10 kΩ 0.7 V AVD Large-signal differential voltage amplificationVO = 1.4 to 4 V,R L= 10 kΩ 1.5 V/µV CMRR Common-mode rejection ratio VIC = VICR min, R S = 50 Ω 100 dB kSVR Supply-voltage rejection ratio (ΔVCC ± /ΔVIO) VCC = 5 V to 30 V 115 dB ICC Supply current VO = 2.5 V, No load 450 µA 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. TLE2022Y operating characteristics, VCC = 5 V, TA = 25°C PARAMETER TEST CONDITIONS TLE2022Y UNITPARAMETER TEST CONDITIONS MIN TYP MAX UNIT SR Slew rate at unity gain VO = 1 V to 3 V,See Figure 1 0.5 V/µs V Equivalent input noise voltage (see Figure 2) f = 10 Hz 21 nV/√HzVn Equivalent input noise voltage (see Figure 2) f = 1 kHz 17 nV/√H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 0.16 µVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 0.47 µV In Equivalent input noise current 0.1 pA/√Hz B1 Unity-gain bandwidth See Figure 3 1.7 MHz φm Phase margin at unity gain See Figure 3 47°
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 33POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLE2024Y electrical characteristics, VCC = 5 V, TA = 25°C (unless otherwise noted) PARAMETER TEST CONDITIONS TLE2024Y UNITPARAMETER TEST CONDITIONS MIN TYP MAX UNIT Input offset voltage long-term drift (see Note 4) 0.005 µV/mo IIO Input offset current VIC = 0, R S = 50 Ω 0.6 nA IIB Input bias current 45 nA VICR Common-mode input voltage range R S = 50 Ω –0.3 to V VOH High-level output voltage R L =1 0kΩ 4.2 V VOL Low-level output voltage R L = 10 kΩ 0.7 V AVD Large-signal differential voltage amplification VO = 1.4 V to 4 V,R L = 10 kΩ 1.5 V/µV CMRR Common-mode rejection ratio VIC = VICRmin, R S = 50 Ω 90 dB kSVR Supply-voltage rejection ratio (ΔVCC /ΔVIO) VCC = 5 V to 30 V 112 dB ICC Supply current VO = 2.5 V, No load 800 µA 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. TLE2024Y operating characteristics, VCC = 5 V, TA = 25°C PARAMETER TEST CONDITIONS TLE2024Y UNITPARAMETER TEST CONDITIONS MIN TYP MAX UNIT SR Slew rate at unity gain VO = 1 V to 3 V,See Figure 1 0.5 V/µs V Equivalent input noise voltage (see Figure 2) f = 10 Hz 21 nV/√ HzVn Equivalent input noise voltage (see Figure 2) f = 1 kHz 17 nV/√ H z VN(PP) Peak topeak equivalent input noise voltage f = 0.1 to 1 Hz 0.16 µVVN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 0.47 µV In Equivalent input noise current 0.1 pA/√Hz B1 Unity-gain bandwidth See Figure 3 1.7 MHz φm Phase margin at unity gain See Figure 3 47°
34 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
NOTE A: CL includes fixture capacitance. Figure 1. Slew-Rate Test Circuit Figure 2. Noise-Voltage Test Circuit NOTE A: CL includes fixture capacitance. Figure 3. Unity-Gain Bandwidth and Phase-Margin Test Circuit
NOTE A: CL includes fixture capacitance. Figure 4. Small-Signal Pulse-Response Test Circuit Typical values presented in this data sheet represent the median (50% point) of device parametric performance.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
36 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
VIO Input offset voltage Distribution 5, 6, 7 IIB Input bias current vs Common-mode input voltage vs Free-air temperature 8, 9, 10 11, 12, 13 II Input current vs Differential input voltage 14 VOM Maximum peak output voltage vs Output current vs Free-air temperature 15, 16, 17 VOH High-level output voltage vs High-level output current vs Free-air temperature 19, 20 VOL Low-level output voltage vs Low-level output current vs Free-air temperature VO(PP) Maximum peak-to-peak output voltage vs Frequency 24, 25 AVD Large-signal differential voltage amplificationvs Frequency vs Free-air temperature 27, 28, 29 IOS Short-circuit output current vs Supply voltage vs Free-air temperature 30 – 33 34 – 37 ICC Supply current vs Supply voltage vs Free-air temperature 38, 39, 40 41, 42, 43 CMRR Common-mode rejection ratio vs Frequency 44, 45, 46 SR Slew rate vs Free-air temperature 47, 48, 49 Voltage-follower small-signal pulse responsevs Time 50, 51 Voltage-follower large-signal pulse responsevs Time 52 – 57 VN(PP) Peak-to-peak equivalent input noise voltage0.1 to 1 Hz 0.1 to 10 Hz Vn Equivalent input noise voltage vs Frequency 60 B1 Unity-gain bandwidth vs Supply voltage vs Free-air temperature 61, 62 63, 64 φm Phase margin vs Supply voltage vs Load capacitance vs Free-air temperature 65, 66 67, 68 69, 70 Phase shift vs Frequency 26
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 37POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TYPICAL CHARACTERISTICS Figure 5 3000–300 600 VIO – Input Offset Voltage – µV Percentage of Units – % –600 ÏÏÏÏ P Package VCC ± = ± 15 V
231 Units Tested From 1 Wafer Lot
TA = 25°C –450 –150 150 450 Figure 6 –600 Percentage of Units – % VIO – Input Offset Voltage – µV 200 –400 –200 0 400 600 DISTRIBUTION OF TLE2022 INPUT OFFSET VOLTAGE ÏÏÏÏÏÏÏÏÏÏÏ
398 Amplifiers Tested From 1 Wafer Lot
VCC ± = ± 15 V TA = 25°C P Package Figure 7 Percentage of Units – % VIO – Input Offset Voltage – mV –0.5 0 0.5
796 Amplifiers Tested From 1 Wafer Lot
VCC ± = ± 15 V TA = 25°C N Package DISTRIBUTION OF TLE2024 INPUT OFFSET VOLTAGE Figure 8 TA = 25°C VCC ± = ± 15 V –35 –30 –25 –20 –15 –10 1050–5–10 –40 VIC – Common-Mode Input Voltage – V IIB – Input Bias Current – nA –15 IBI TLE2021 INPUT BIAS CURRENT vs COMMON-MODE INPUT VOLTAGE
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
38 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
–15 IIB – Input Bias Current – nA VIC – Common-Mode Input Voltage – V –50 15–10 –5 0 5 10 –20 –25 –30 –35 –40 –45 VCC ± = ± 15 V TA = 25°C IBI TLE2022 INPUT BIAS CURRENT vs COMMON-MODE INPUT VOLTAGE Figure 10 –15 IIB – Input Bias Current – nA VIC – Common-Mode Input Voltage – V –60 –20 –10 –5 05 10 –30 –40 –50 VCC ± = ± 15 V TA = 25°C ÁÁ ÁÁ IIB TLE2024 INPUT BIAS CURRENT vs COMMON-MODE INPUT VOLTAGE Figure 11 –30 –25 –20 –15 –10 1007550250–25–50 125 –35 TA – Free-Air Temperature – °C IIB – Input Bias Current – nA –75 IBI TLE2021 INPUT BIAS CURRENT † vs FREE–AIR TEMPERATURE VCC ± = ± 15 V VO = 0 VIC = 0 Figure 12 –75 IIB – Input Bias Current – nA TA – Free-Air Temperature – °C –50 125–50 –25 0 25 50 75 100 –20 –25 –30 –35 –40 –45 VCC ± = ± 15 V VO = 0 VIC = 0 IBI TLE2022 INPUT BIAS 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
40 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
IO – Output Current – mA VOM – Maximum Peak Output Voltage – V 24 6 81 0 1 2 ÏÏÏ ÏÏÏ VOM– VCC ± = ± 5 V ÏÏÏ VOM+ ÁÁ ÁÁ ÁÁ VOM ÏÏÏÏ TA = 25°C TLE2024 MAXIMUM PEAK OUTPUT VOLTAGE vs OUTPUT CURRENT Figure 18 –75 TA – Free-Air Temperature – °C 125 –50 –25 0 25 50 75 100 12.5 13.5 14.5 VOM– VOM+ VCC ± = ± 15 V TA = 25°C R L = 10 kΩ MAXIMUM PEAK OUTPUT VOLTAGE † vs FREE-AIR TEMPERATURE VOM| – Maximum Peak Output Voltage – V ÁÁ ÁÁ ÁÁ |VOM Figure 19 VOH – High-Level Output Voltage – V IOH – High-Level Output Current – mA TA = 25°C VCC = 5 V ÁÁÁ ÁÁÁ VOH TLE2021 HIGH–LEVEL OUTPUT VOLTAGE vs HIGH–LEVEL OUTPUT CURRENT Figure 20 IOH – High-Level Output Current – mA VOH – High-Level Output Voltage – V –2 –4 –6 –8 TA = 25°C VCC = 5 V ÁÁ ÁÁ VOH –10 TLE2022 AND TLE2024 HIGH-LEVEL OUTPUT VOLTAGE vs HIGH-LEVEL OUTPUT CURRENT † Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
42 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
f – Frequency – Hz 1 M 1 k 10 k 100 k MAXIMUM PEAK-TO-PEAK OUTPUT VOLTAGE vs FREQUENCY ÁÁÁÁÁ ÁÁÁÁÁ ÁÁÁÁÁ TA = 25°C VCC ± = ± 15 V R L = 10 kΩ VOPP – Maximum Peak-to-Peak Output Voltage – V ÁÁ ÁÁ ÁÁ ÁÁ VO(PP) ÏÏÏÏÏÏ ÏÏÏÏÏÏ VCC ± = ± 15 V ÏÏÏÏÏ ÏÏÏÏÏ ÏÏÏÏÏ R L = 10 kΩ C L = 30 pF TA = 25°C Phase Shift AVD 180° 60° 200° 160° 140° 120° 100° 80°100
1 M100 k10 k1 k100
–20 10 M 120 f – Frequency – Hz LARGE-SIGNAL DIFFERENTIAL VOLTAGE AMPLIFICATION AND PHASE SHIFT vs FREQUENCY ÏÏÏÏÏ ÏÏÏÏÏ Phase Shift VCC = 5 V – Large-Signal DifferentialA VD Voltage Amplification – dB Figure 26
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
44 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
IOS – Short-Circuit Output Current – mA |VCC ±| – Supply Voltage – V –15 2 4 6 81 0 1 2 1 4 VO = 0 TA = 25°C VID = 100 mV –10 IOS ÏÏÏÏÏÏ ÏÏÏÏÏÏ VID = –100 mV TLE2022 AND TLE2024 SHORT-CIRCUIT OUTPUT CURRENT vs SUPPLY VOLTAGE Figure 32 VO = VCC TA = 25°C VID = 100 mV VID = –100 mV VO = 0 252015105 –1 2 VCC – Supply Voltage – V IOS – Short-Circuit Output Current – mA ÁÁ ÁÁ ÁÁ OSI TLE2021 SHORT-CIRCUIT OUTPUT CURRENT vs SUPPLY VOLTAGE Figure 33 IOS – Short-Circuit Output CUrrent – mA VCC – Supply Voltage – V –15 –10 ÏÏÏÏÏ ÏÏÏÏÏ TA = 25°C VID = –100 mV VID = 100 mV 252015105 VO = VCC VO = 0 IOS TLE2022 AND TLE2024 SHORT-CIRCUIT OUTPUT CURRENT vs SUPPLY VOLTAGE Figure 34 –7 5 125 –5 0 –2 5 02 5 50 75 100 VID = –100 mV VCC =5 V VID = 100 mV VO = 0 VO = 5 V TA – Free-Air Temperature – °C IOS – Short-Circuit Output Current – mA ÁÁ ÁÁ OSI TLE2021 SHORT-CIRCUIT OUTPUT 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
46 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
ICC – Supply Current – ua |VCC ±| – Supply Voltage – V 162 4 6 8 10 12 14 VO = 0 No Load TA = 25°C TA = 125°C TA = –55°C 100 200 300 400 500 ÁÁ ÁÁ ÁÁ CCI Aµ TLE2022 SUPPLY CURRENT vs SUPPLY VOLTAGE Figure 40 |VCC ±| – Supply Voltage – V 162 4 6 8 10 12 14 VO = 0 No Load 200 400 600 800 1000 TA = 25°C ÏÏÏÏÏ TA = 125°C TA = –55°C – Supply Current –µ AICC TLE2024 SUPPLY CURRENT vs SUPPLY VOLTAGE Figure 41 –75 225 125 100 125 150 175 200 –50 –25 0 25 50 75 100 TA – Free-Air Temperature – °C No Load VO = 0 ÏÏÏÏÏÏ ÏÏÏÏÏÏ VCC ± = ± 2.5 V ÏÏÏÏÏÏ ÏÏÏÏÏÏ VCC ± = ± 15 V ICC – Supply Current – ua ÁÁÁ ÁÁÁ CCI Aµ TLE2021 SUPPLY CURRENT † vs FREE-AIR TEMPERATURE Figure 42 –75 500 125 –50 –25 0 25 50 75 100 VCC ± = ± 15 V VCC ± = ± 2.5 V TA – Free-Air Temperature – °C No Load VO = 0 400 300 200 100 ICC – Supply Current – ua ÁÁ ÁÁ CCI Aµ TLE2022 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.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 47POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TYPICAL CHARACTERISTICS Figure 43 –75 125–50 –25 0 25 50 75 100 TA – Free-Air Temperature – °C 1000 800 600 400 200 ÏÏÏÏÏ ÏÏÏÏÏ VCC ± = ± 15 V ÏÏÏÏÏ VCC ± = ± 2.5 V VO = 0 No Load – Supply Current –µ AICC TLE2024 SUPPLY CURRENT † vs FREE-AIR TEMPERATURE Figure 44 TA = 25°C ÏÏÏÏ ÏÏÏÏ VCC = 5 V ÏÏÏÏÏ ÏÏÏÏÏ VCC ± = ± 15 V 100 f – Frequency – Hz CMRR – Common-Mode Rejection Ratio – dB TLE2021 COMMON-MODE REJECTION RATIO vs FREQUENCY Figure 45 CMRR – Common-Mode Rehection Ratio – dB f – Frequency – Hz 120 10 M 100 1 k 10 k 100 k 1 M 100 VCC ± = ± 15 V VCC = 5 V ÏÏÏÏÏÏ TA = 25°C TLE2022 COMMON-MODE REJECTION RATIO vs FREQUENCY Figure 46 CMRR – Common-Mode Rejection Ratio – dB f – Frequency – Hz 120 10 M 100 1 k 10 k 100 k 1 M 100 ÏÏÏÏ ÏÏÏÏ VCC = 5 V TA = 25°C ÏÏÏÏÏ ÏÏÏÏÏ VCC ± = ± 15 V TLE2024 COMMON-MODE REJECTION RATIO vs FREQUENCY † Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
48 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
R L = 20 kΩ C L = 30 pF 0.8 0.6 0.4 0.2 1007550250–25–50 125 TA – Free-Air Temperature – °C SR – Slew Rate – V/us –75 sµ ÏÏÏÏÏÏ ÏÏÏÏÏÏ VCC ± = ± 15 V ÏÏÏÏ ÏÏÏÏ VCC = 5 V TLE2021 SLEW RATE † vs FREE-AIR TEMPERATURE Figure 48 –75 SR – Slew Rate – V/ us TA – Free-Air Temperature – °C 125 –50 –25 0 25 50 75 100 0.2 0.4 0.6 0.8 VCC ± = ± 15 V VCC = 5 V C L = 30 pF R L = 20 kΩ See Figure 1 sµ TLE2022 SLEW RATE † vs FREE-AIR TEMPERATURE Figure 49 –75 SR – Slew Rate – V/s TA – Free-Air Temperature – °C 125 –50 –25 0 25 50 75 100 0.2 0.4 0.6 0.8 C L = 30 pF R L = 20 kΩ See Figure 1 ÏÏÏÏÏ VCC ± = ± 15 V VCC = 5 V sµV/ TLE2024 SLEW RATE † vs FREE-AIR TEMPERATURE Figure 50 ÏÏÏÏ ÏÏÏÏ See Figure 4 TA = 25°C C L = 30 pF R L = 10 kΩ VCC ± = ± 15 V –50 6040200 –100 100 t – Time – µs VO – Output Voltage – mV VOLTAGE-FOLLOWER SMALL-SIGNAL PULSE RESPONSE ÁÁ ÁÁ VO † Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
50 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
VO – Output Voltage – V t – Time – µs –15 0 20 40 60 –10 VCC ± = ± 15 V R L = 10 kΩ C L = 30 pF TA = 25°C See Figure 1 ÁÁ ÁÁ VO TLE2021 VOLTAGE-FOLLOWER LARGE-SIGNAL PULSE RESPONSE Figure 56 VO – Output Voltage – V t – Time – µs –15 0 20 40 60 –10 ÏÏÏÏÏ ÏÏÏÏÏ VCC ± = ± 15 V R L = 10 kΩ C L = 30 pF TA = 25°C See Figure 1 ÁÁ ÁÁ VO TLE2022 VOLTAGE-FOLLOWER LARGE-SIGNAL PULSE RESPONSE Figure 57 VO – Output Voltage – V t – Time – µs –15 0 20 40 60 –10 ÏÏÏÏÏ ÏÏÏÏÏ ÏÏÏÏÏ ÏÏÏÏÏ VCC ± = ± 15 V R L = 10 kΩ C L = 30 pF TA = 25°C See Figure 1 VO TLE2024 VOLTAGE-FOLLOWER LARGE-SIGNAL PULSE RESPONSE Figure 58 0.5 – 0.5 1 2 3 4 5 6 7 8 9 – 0.4 – 0.3 – 0.2 – 0.1 0.1 0.2 0.3 0.4 t – Time – s ÏÏÏÏÏ ÏÏÏÏÏ VCC ± = ± 15 V TA = 25°C PEAK-TO-PEAK EQUIVALENT INPUT NOISE VOLTAGE
0.1 TO 1 Hz
VNPP – Peak-to-Peak Equivalent Input Noise Voltage – uVVµ ÁÁ ÁÁ ÁÁ VN(PP)
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 51POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TYPICAL CHARACTERISTICS Figure 59 t – Time – s 0.4 0.3 0.2 0.1 – 0.1 – 0.2 – 0.3 – 0.4 – 0.5 0.5 9876543211 00 VCC ± = ± 15 V TA = 25°C PEAK-TO-PEAK EQUIVALENT INPUT NOISE VOLTAGE
0.1 TO 10 Hz
VNPP – Peak-to-Peak Equivalent Input Noise Voltage – uVVµ ÁÁ ÁÁ ÁÁ VN(PP) Figure 60 Vn – Equivalent Input Noise Voltage – nVHz f – Frequency – Hz 200 10 k 120 160 10 100 1 k EQUIVALENT INPUT NOISE VOLTAGE vs FREQUENCY V n ÁÁ ÁÁ ÁÁ nV/ Hz ÁÁÁÁÁ ÁÁÁÁÁ ÁÁÁÁÁ ÁÁÁÁÁ ÏÏÏÏÏ ÏÏÏÏÏ VCC ± = ± 15 V R S = 20 Ω ÏÏÏÏ TA = 25°C ÏÏÏÏÏ ÏÏÏÏÏ See Figure 2 Figure 61 B1 – Unity-Gain Bandwidth – MHz 2 4 6 8 10 12 14 See Figure 3 TA = 25°C C L = 30 pF R L = 10 kΩ B 1 |VCC ±| – Supply Voltage – V TLE2021 UNITY-GAIN BANDWIDTH vs SUPPLY VOLTAGE Figure 62 1412108642 |VCC ±| – Supply Voltage – V B1 – Unity-Gain Bandwidth – MHz B 1 ÁÁÁÁÁ ÁÁÁÁÁ ÁÁÁÁÁ ÁÁÁÁÁ R L = 10 kΩ C L = 30 pF TA = 25°C See Figure 3 TLE2022 AND TLE2024 UNITY-GAIN BANDWIDTH vs SUPPLY VOLTAGE
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
52 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
–75 B1 – Unity-Gain Bandwidth – MHz TA – Free-Air Temperature – °C 125 –50 –25 0 25 50 75 100 See Figure 3 C L = 30 pF R L = 10 kΩ VCC ± = ± 15 V ÏÏÏÏÏ VCC = 5 V B 1 TLE2021 UNITY-GAIN BANDWIDTH † vs FREE-AIR TEMPERATURE Figure 64 ÁÁÁÁ ÁÁÁÁ ÁÁÁÁ VCC = 5 V 1007550250–25–50 125 TA – Free-Air Temperature – °C –75 R L = 10 kΩ C L = 30 pF See Figure 3 ÏÏÏÏÏ ÏÏÏÏÏ VCC ± = ± 15 V B1 – Unity-Gain Bandwidth – MHzB 1 TLE2022 AND TLE2024 UNITY-GAIN BANDWIDTH † vs FREE-AIR TEMPERATURE Figure 65 m – Phase Margin 50° 40° 2 4 6 8 10 12 14 42° 44° 46° 48° |VCC ±| – Supply Voltage – V R L = 10 kΩ C L = 30 pF TA = 25°C See Figure 3 ÁÁ ÁÁ mφ TLE2021 PHASE MARGIN vs SUPPLY VOLTAGE Figure 66 53° 51° 49° 47° 1412108642 45° 55° m – Phase Margin |VCC ±| – Supply Voltage – V ÁÁ ÁÁ mφ ÁÁÁÁ ÁÁÁÁ ÁÁÁÁ ÁÁÁÁ See Figure 3 TA = 25°C C L = 30 pF R L = 10 kΩ TLE2022 AND TLE2024 PHASE MARGIN vs SUPPLY VOLTAGE † Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices.
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
54 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
APPLICATION INFORMATION
voltage-follower applications The TLE202x circuitry includes input-protection diodes to limit the voltage across the input transistors; however, no provision is made in the circuit to limit the current if these diodes are forward biased. This condition can occur when the device is operated in the voltage-follower configuration and driven with a fast, large-signal pulse. It is recommended that a feedback resistor be used to limit the current to a maximum of 1 mA to prevent degradation of the device. This feedback resistor forms a pole with the input capacitance of the device. For feedback resistor values greater than 10 kΩ , this pole degrades the amplifier phase margin. This problem can be alleviated by adding a capacitor (20 pF to 50 pF) in parallel with the feedback resistor (see Figure 71). C F = 20 pF to 50 pF IF ≤ 1 mA R F VCC+ VCC– VO VI Figure 71. Voltage Follower pins may be left disconnected. Figure 72. Input Offset Voltage Null Circuit
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 55POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 Macromodel information provided was derived using MicrosimParts , the model generation software used with Microsim PSpice . The Boyle macromodel (see Note 5) and subcircuit in73, Figure 74, and Figure 75 were generated using the TLE202x 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). OUT – + 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 Figure 73. Boyle Subcircuit PSpice and Parts are trademarks of MicroSim Corporation.
56 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
Figure 74. Boyle Macromodel for the TLE2021 Figure 75. Boyle Macromodel for the TLE2022
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 57POST 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
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
58 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
DB (R-PDSO-G**) PLASTIC SMALL-OUTLINE PACKAGE 4040065 /C 10/95
28 PIN SHOWN
8,20 7,40 0,15 NOM 0,63 1,03 0,25 12,90 12,30 10,50 8,50 Seating Plane 9,907,90 10,50 9,90 0,38 5,60 5,00 0,22 A 2016 6,506,50 0,05 MIN 5,905,90 DIM A MAX A MIN PINS ** 2,00 MAX 6,90 7,50 0,65 M0,15 0°–8° 0,10 3,30 2,70 NOTES: A. All linear dimensions are in millimeters. B. This drawing is subject to change without notice. C. Body dimensions do not include mold flash or protrusion not to exceed 0,15. D. Falls within JEDEC MO-150
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 59POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 MECHANICAL INFORMATION DW (R-PDSO-G**) PLASTIC SMALL-OUTLINE PACKAGE
16 PIN SHOWN
0.400 (10,15) 0.419 (10,65) 0.104 (2,65) MAX 0.012 (0,30) 0.004 (0,10) A 0.020 (0,51) 0.014 (0,35) 0.293 (7,45) 0.299 (7,59) 0.010 (0,25) 0.050 (1,27) 0.016 (0,40) (15,24) (15,49) PINS ** 0.010 (0,25) NOM A MAX DIM A MIN Gage Plane 0.500 (12,70) (12,95) 0.510 (10,16) (10,41) 0.400 0.410 0.600 0.610 (17,78) 0.700 (18,03) 0.710 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. Falls within JEDEC MS-013
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
60 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
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 61POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 MECHANICAL INFORMATION J (R-GDIP-T**) CERAMIC DUAL-IN-LINE PACKAGE 4040083/B 04/95 0.410 (10,41) 0.390 (28,00) 1.100 (9,91) 0.388 (9,65) 20181614PINS ** 0.310 (7,87) 0.290 0.755 (19,18) (19,94) 0.785 (7,37) 0.310 (7,87) (7,37) 0.290 (23,10) 0.910 0.300 (7,62) (6,22) 0.245 A 0.300 (7,62) (6,22) 0.245 0.290 (7,87) 0.310 0.785 (19,94) (19,18) 0.755 (7,37)A MIN A MAX B MAX B MIN 0.245 (6,22) (7,11) 0.280 C MIN C MAX DIM 0.245 (6,22) (7,62) 0.300 0.975 (24,77) (23,62) 0.930 0.290 (7,37) (7,87) 0.310 Seating Plane 0.014 (0,36) 0.008 (0,20) C 0.020 (0,51) MIN B 0.070 (1,78) 0.100 (2,54) 0.065 (1,65) 0.045 (1,14) 0.015 (0,38) 0.023 (0,58) 0.200 (5,08) MAX 0.130 (3,30) MIN 0.100 (2,54) 0°–15° 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-T14, GDIP1-T16, GDIP1-T18, GDIP1-T20, and GDIP1-T22
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
62 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
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
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 63POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 MECHANICAL INFORMATION N (R-PDIP-T) PLASTIC DUAL-IN-LINE PACKAGE 0.975 (24,77) 0.940 (23,88) 0.920 0.850 0.775 0.745 (19,69) (18,92) 0.775 (19,69) (18,92) 0.745A MIN DIM A MAX PINS 0.310 (7,87) 0.290 (7,37) (23.37) (21.59) Seating Plane 0.010 (0,25) NOM 14/18 PIN ONLY 4040049/C 08/95 0.070 (1,78) MAX A 0.035 (0,89) MAX 0.020 (0,51) MIN 0.015 (0,38) 0.021 (0,53) 0.200 (5,08) MAX 0.125 (3,18) MIN 0.240 (6,10) 0.260 (6,60) 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 (20 pin package is shorter then MS-001.)
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997
64 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
TLE202x, TLE202xA, TLE202xB, TLE202xY EXCALIBUR HIGH-SPEED LOW-POWER PRECISION OPERATIONAL AMPLIFIERS SLOS191 – FEBRUARY 1997 65POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 MECHANICAL INFORMATION PW (R-PDSO-G**) PLASTIC SMALL-OUTLINE PACKAGE 4040064/D 10/95 0,10 MIN1,20 MAX A 0,19 4,50 4,30 6,10 6,70 0,32 0,75 0,50 0,25 Gage Plane 0,15 NOM 0,65 M0,13 0°–8° 0,10 PINS ** A MIN A MAX DIM 2,90 3,10 4,90 5,10 6,60 6,404,90 5,10 7,70 7,90 9,60 9,80 NOTES: A. All linear dimensions are in millimeters. B. This drawing is subject to change without notice. C. Body dimensions do not include mold flash or protrusion not to exceed 0,15. D. Falls within JEDEC MO-153
Texas Instruments and its subsidiaries (TI) reserve the right to make changes to their products or to discontinue any product or service without notice, and advise customers to obtain the latest version of relevant information to verify, before placing orders, that information being relied on is current and complete. All products are sold subject to the terms and conditions of sale supplied at the time of order acknowledgement, including those pertaining to warranty, patent infringement, and limitation of liability. TI warrants performance of its semiconductor products to the specifications applicable at the time of sale in accordance with TI’s standard warranty. Testing and other quality control techniques are utilized to the extent TI deems necessary to support this warranty. Specific testing of all parameters of each device is not necessarily performed, except those mandated by government requirements. CERTAIN APPLICATIONS USING SEMICONDUCTOR PRODUCTS MAY INVOLVE POTENTIAL RISKS OF DEATH, PERSONAL INJURY, OR SEVERE PROPERTY OR ENVIRONMENTAL DAMAGE (“CRITICAL APPLICATIONS”). TI SEMICONDUCTOR PRODUCTS ARE NOT DESIGNED, AUTHORIZED, OR WARRANTED TO BE SUITABLE FOR USE IN LIFE-SUPPORT DEVICES OR SYSTEMS OR OTHER CRITICAL APPLICATIONS. INCLUSION OF TI PRODUCTS IN SUCH APPLICATIONS IS UNDERSTOOD TO BE FULLY AT THE CUSTOMER’S RISK. In order to minimize risks associated with the customer’s applications, adequate design and operating safeguards must be provided by the customer to minimize inherent or procedural hazards. TI assumes no liability for applications assistance or customer product design. TI does not warrant or represent that any license, either express or implied, is granted under any patent right, copyright, mask work right, or other intellectual property right of TI covering or relating to any combination, machine, or process in which such semiconductor products or services might be or are used. TI’s publication of information regarding any third party’s products or services does not constitute TI’s approval, warranty or endorsement thereof. Copyright 1998, Texas Instruments Incorporated