TLC1078 TI | Alldatasheet
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TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997 1POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 /C0068Power Dissipation as Low as 10 µW Typ Per Amplifier /C0068Operates on a Single Silver-Oxide Watch Battery, V DD = 1.4 V Min /C0068VIO . . . 450 µV/850 µV Max in DIP and Small-Outline Package (TLC1078/79) /C0068Input Offset Voltage Drift...0.1 µV/Month Typ, Including the First 30 Days /C0068High-impedance LinCMOS Inputs IIB = 0.6 pA Typ /C0068High Open-Loop Gain...8 0 0000 Typ /C0068Output Drive Capability > 20 mA /C0068Slew Rate...4 7 V/ms Typ /C0068Common-Mode Input Voltage Range Extends Below the Negative Rail /C0068Output Voltage Range Includes Negative Rail /C0068On-Chip ESD-Protection Circuitry /C0068Small-Outline Package Option Also Available in Tape and Reel
description
The TLC107x operational amplifiers offer ultra- low offset voltage, high gain, 110-kHz bandwidth, 47-V/ms slew rate, and just 150-µW power dissipation per amplifier. With a supply voltage of 1.4 V, common-mode input to the negative rail, and output swing to the negative rail, the TLC107xC is an ideal solution for low-voltage battery-operated systems. The 20-mA output drive capability means that the TLC107x can easily drive small resistive and large capacitive loads when needed, while maintaining ultra-low standby power dissipation. Since this device is functionally compatible as well as pin compatible with the TLC27L2/4 and TLC27L7/9, the TLC107x easily upgrades existing designs that can benefit from its improved performance. 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. LinCMOS is a trademark of Texas Instruments Incorporated. 1OUT 1IN – 1IN+ GND VDD 2OUT 2IN – 2IN+ 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 2IN + NC NC NC GND NC NC – No internal connection DDV TLC1078 D, JG, OR P PACKAGE (TOP VIEW) TLC1078 FK PACKAGE (TOP VIEW) 3212 0 1 9 91 0 1 1 1 2 1 3 4IN+ NC GND NC 3IN+ 1IN+ NC V DD NC 2IN+ 1IN – 1OUT NC 3OUT 3IN – 4IN – 2IN – 2OUT NC 4OUT 1OUT 1IN – 1IN+ VDD 2IN+ 2IN – 2OUT 4OUT 4IN – 4IN+ GND 3IN+ 3IN – 3OUT TLC1079 D, J, OR N PACKAGE (TOP VIEW) TLC1079 FK PACKAGE (TOP VIEW)
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997
2 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
description (continued) The TLC107x incorporates internal ESD-protection circuits that will prevent functional failures at voltages up to 2000 V as tested under MIL-PRF-38535, Method 3015.2; however, care should be exercised when handling these devices as exposure to ESD may result in degradation of the device parametric performance. The TLC107x design also inhibits latch-up of the device inputs and outputs even with surge currents as large 100 mA. 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. The wide range of packaging options includes small-outline and chip-carrier versions for high-density system applications. AVAILABLE OPTIONS PACKAGED DEVICES CHIP TA SMALL OUTLINE † CHIP CARRIER CERAMIC DIP CERAMIC DIP PLASTIC DIP PLASTIC DIP FORM ‡ (Y)(D) (FK) (J) (JG) (N) (P) (Y) 0°C to 70°C TLC1078CD TLC1079CD — — — TLC1079CN TLC1078CP TLC1078Y TLC1079Y –40°C to 85°C TLC1078ID TLC1079ID — — — TLC1079IN TLC1078IP — –55°C to 125°C TLC1078MD TLC1079MD TLC1078MFK TLC1079MFK TLC1079MJ TLC1078MJG TLC1079MN TLC1078MP — † The D package is available taped and reeled. Add the suffix R to the device type (e.g., TLC1078CDR). ‡ Chip forms are tested 25°C only. symbol (each amplifier) OUT IN– IN+
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997 3POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLC1087Y chip information This chip, when properly assembled, displays characteristics similar to the TLC1078C. Thermal compression or ultrasonic bonding may be used on the doped-aluminum bonding pads. Chips can 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. 1OUT 1IN+ 1IN– VDD VDD– /GND (8)(3) (2) (4) 2OUT 2IN+ 2IN– (5) (6) (1) (5)(4) (3) (2) (6) (7)(8) BONDING PAD ASSIGNMENTS
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997
4 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
This chip, when properly assembled, display characteristics similar to the TLC1079C. Thermal compression or ultrasonic bonding may be used on the doped-aluminum bonding pads. Chips can be mounted with conductive epoxy or a gold-silicon preform. BONDING PAD ASSIGNMENTS 1OUT 1IN+ 1IN– VDD (4) (6) (3) (2) (5) (1) 2IN+ 2IN– 2OUT (11) VDD– /GND 3OUT 3IN+ 3IN– (13) (10) (9) (12) (8) + (14) 4OUT 4IN+ 4IN– (7) 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. 130 (1) (2) (3) (4) (5) (6) (7) (8) (9) (10) (11) (12) (13) (14)
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997 5POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 equivalent schematic (each amplifier) R2 D1 R3 Q4Q2 IN– IN+ Q3 Q6 VDD GND Q10 Q13 OUT Q11 Q12 ACTUAL DEVICE COMPONENT COUNT COMPONENT TLC1078 TLC1079 Transistors 38 76 Resistors 16 32 Diodes 12 24 Capacitors 2 4
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997
6 POST 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 network ground. 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 ratings are 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 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 J 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 N 1150 mW 9.2 mW/ °C 736 mW 598 mW 230 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 1.4 16 3 16 4 16 V Common mode in put voltage VIC VDD = 5 V –0.2 4 –0.2 4 0 4 VCommon -mode input voltage, VIC VDD = 10 V –0.2 9 –0.2 9 0 9 V Operating free-air temperature, TA 0 70 –40 85 –55 125 °C
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997 7POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 electrical characteristics at specified free-air temperature TEST † TLC1078C PARAMETER TEST CONDITIONS TA † VDD = 5 V VDD = 10 V UNITCONDITIONS A MIN TYP MAX MIN TYP MAX VIO Input offset voltage VO = 1.4 V, 25°C 160 450 180 600 µVVIO Input offset voltage VO = 1.4 V, R S = 50 Ω , Full range 800 950 µV α VIO Temperature coefficient of input offset voltage VIC = 0, R I = 1 MΩ 25°C to 70°C 1.1 1 µV/°C IIO Input offset current (see Note 4) 25°C 0.1 0.1 pAIIO Input offset current (see Note 4) VO = VDD / 2, 70°C 7 300 7 300 pA IIB Input bias current (see Note 4) OD D , VIC = VDD / 2 25°C 0.6 0.7 pAIIB Input bias current (see Note 4) 70°C 40 600 50 600 pA VICR Common-mode input voltage 25°C –0.2 to 4 –0.3 to 4.2 –0.2 to 9 –0.3 to 9.2 V VICR g range (see Note 5) Full range –0.2 to 3.5 –0.2 to 8.5 V V 100 V 25°C 3.2 4.1 8.2 8.9 VOH High-level output voltage VID = 100 mV, R L=1M Ω 0°C 3.2 4.1 8.2 8.9 VR L= 1 M Ω 70°C 3.2 4.2 8.2 8.9 V 100 V 25°C 0 25 0 25 VOL Low-level output voltage VID = –100 mV, IOL =0 0°C 0 25 0 25 mVIOL = 0 70°C 0 25 0 25 L i l diff ti l lt R1 M Ω 25°C 250 525 500 850 AVD Large-signal differential voltage am plification R L= 1 MΩ , See Note 6 0°C 250 680 500 1010 V/mVam lification See Note 6 70°C 200 380 350 660 25°C 70 95 75 97 CMRR Common-mode rejection ratio V IC = VICRmin 0°C 70 95 75 97 dB 70°C 70 95 75 97 S l lt j ti ti 25°C 75 98 75 98 kSVR Supply-voltage rejection ratio (ΔVDD /ΔVIO) VO = 1.4 V 0°C 75 98 75 98 dB(ΔVDD /ΔVIO) 70°C 75 98 75 98 VO = VDD / 2, 25°C 20 34 29 46 IDD Supply current (two amplifiers) VO VDD / 2, VIC = VDD / 2, Nl d 0°C 24 42 36 66 µA No load 70°C 16 28 22 40 † Full range is 0°C to 70°C. NOTES: 4. The typical values of input bias current and input offset current below 5 pA were determined mathematically. 5. This range also applies to each input individually. 6. At VDD = 5 V. VO = 0.25 V to 2 V; at VDD = 10 V, VO = 1 V to 6 V.
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997
8 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
electrical characteristics at specified free-air temperature TLC1079C PARAMETER TEST CONDITIONS TA † VDD = 5 V VDD = 10 V UNIT MIN TYP MAX MIN TYP MAX VIO Input offset voltage 25°C 190 850 200 1150 µVVIO Input offset voltage VO = 1.4 V,VIC = 0, Full range 1200 1500 µV α VIO Temperature coefficient of input offset voltage R S = 50 Ω , R I = 1 MΩ 25°C to 70°C 1.1 1 µV/°C IIO Input offset current 25°C 0.1 0.1 pAIIO (see Note 4) VO = VDD / 2, 70°C 7 300 7 300 pA IIB Input bias current OD D , VIC = VDD / 2 25°C 0.6 0.7 pAIIB (see Note 4) 70°C 40 600 50 600 pA VICR Common mode input 25°C –0.2 to 4 –0.3 to 4.2 –0.2 to 9 –0.3 to 9.2 V VICR voltage range (see Note 5) Full range –0.2 to 3.5 –0.2 to 8.5 V V 100 V 25°C 3.2 4.1 8.2 8.9 VOH High-level output voltageVID = 100 mV, R L =1M Ω 0°C 3.2 4.1 8.2 8.9 VR L = 1 M Ω 70°C 3.2 4.2 8.2 8.9 V 100 V 25°C 0 25 0 25 VOL Low-level output voltageVID = –100 mV, IOL =0 0°C 0 25 0 25 mVIOL = 0 70°C 0 25 0 25 L i l diff ti l 25°C 250 525 500 850 AVD Large-signal differential voltage amplification R L = 1 MΩ, See Note 6 0°C 250 700 500 1010 V/mVvoltage am lification 70°C 200 380 350 660 Cd j t i 25°C 70 95 75 97 CMRR Common mode rejection ratio VIC = VICRmin 0°C 70 95 75 97 dBratio 70°C 70 95 75 97 S l lt j ti V 5Vt 1 0V 25°C 75 98 75 98 kSVR Supply-voltage rejection ratio (ΔVDD /ΔVIO) VDD = 5 V to 10 V, VO =14V 0°C 75 98 75 98 dBratio (ΔVDD /ΔVIO) VO = 1.4 V 70°C 75 98 75 98 Supply current (four VV / 2 25°C 40 68 57 92 IDD Supply current (four am plifiers) VO = VDD / 2, VIC = VDD / 2, No load 0°C 48 84 72 132 µAam lifiers) VIC = VDD / 2, No load 70°C 31 56 44 80 † Full range is 0°C to 70°C. NOTES: 4. The typical values of input bias current and input offset current below 5 pA were determined mathematically. 5. This range also applies to each input individually. 6. At VDD = 5 V, VO = 0.25 V to 2 V; at VDD = 10 V, VO = 1 V to 6 V.
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997 9POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 operating characteristics at specified free-air temperature TLC1078C PARAMETER TEST CONDITIONS TA VDD = 5 V VDD = 10 V UNIT MIN TYP MAX MIN TYP MAX R1 M Ω C2 0 F 25°C 32 47 SR Slew rate at unity gain R L = 1 MΩ , VI(PP)=1V C L = 20 pF, See Figure 1 0°C 35 51 V/msVI(PP) = 1 V, See Figure 1 70°C 27 38 Vn Equivalent input noise voltagef = 1 kHz, R S = 20 Ω 25°C 68 68 nV/√Hz 25°C 85 110 B1 Unity-gain bandwidth C L = 20 pF, See Figure 2 0°C 100 125 kHz 70°C 65 90 25°C 34° 38° φm Phase margin at unity gain CL = 20 pF, See Figure 2 0°C 36° 40° 70°C 30° 34° operating characteristics at specified free-air temperature TLC1079C PARAMETER TEST CONDITIONS TA VDD = 5 V VDD = 10 V UNIT MIN TYP MAX MIN TYP MAX R1 M Ω C2 0 F 25°C 32 47 SR Slew rate at unity gain R L = 1 MΩ , VI(PP)=1V C L = 20 pF, See Figure 1 0°C 35 51 V/msVI(PP) = 1 V, See Figure 1 70°C 27 38 Vn Equivalent input noise voltagef = 1 kHz, R S = 20 Ω 25°C 68 68 nV/√Hz 25°C 85 110 B1 Unity-gain bandwidth C L = 20 pF, See Figure 2 0°C 100 125 kHz 70°C 65 90 25°C 34° 38° φm Phase margin at unity gain CL = 20 pF, See Figure 2 0°C 36° 40° 70°C 30° 34°
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997
10 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
electrical characteristics at specified free-air temperature TLC1078I PARAMETER TEST CONDITIONS TA † VDD = 5 V VDD = 10 V UNITCONDITIONS A MIN TYP MAX MIN TYP MAX VIO Input offset voltage V1 4 V 25°C 160 450 180 600 µVVIO Input offset voltage VO = 1.4 V, R S =5 0Ω Full range 950 1100 µV α VIO Temperature coefficient of input offset voltage R S = 50 Ω , VIC = 0, RI = 1 MΩ 25°C to 85°C 1.1 1 µV/°C IIO Input offset current 25°C 0.1 0.1 pAIIO In ut offset current (see Note 4) VO = VDD / 2, 85°C 24 1000 26 1000 pA IIB Input bias current (see Note 4) OD D , VIC = VDD / 2 25°C 0.6 0.7 pAIIB Input bias current (see Note 4) 85°C 200 2000 220 2000 pA VICR Common-mode input voltage 25°C –0.2 to 4 –0.3 to 4.2 –0.2 to 9 –0.3 to 9.2 V VICR g range (see Note 5) Full range –0.2 to 3.5 –0.2 to 8.5 V V 100 V 25°C 3.2 4.1 8.2 8.9 VOH High-level output voltage VID = 100 mV, R L =1M Ω –40°C 3.2 4.1 8.2 8.9 VR L = 1 M Ω 85°C 3.2 4.2 8.2 8.9 V 100 V 25°C 0 25 0 25 VOL Low-level output voltage VID = –100 mV, IOL =0 –40°C 0 25 0 25 mVIOL = 0 85°C 0 25 0 25 L i l diff ti l lt R1 M Ω 25°C 250 525 500 850 AVD Large-signal differential voltage am plification R L = 1 MΩ, See Note 6 –40°C 250 900 500 1550 V/mVam lification See Note 6 85°C 150 300 250 585 25°C 70 95 75 97 CMRR Common-mode rejection ratio VIC = VICRmin –40°C 70 95 75 97 dB 85°C 70 95 75 97 S l lt j ti ti 25°C 75 98 75 98 kSVR Supply-voltage rejection ratio (ΔVDD /ΔVIO) VO = 1.4 V –40°C 75 98 75 98 dB(ΔVDD /ΔVIO) 85°C 75 98 75 98 VO = VDD / 2, 25°C 20 34 29 46 IDD Supply current (two amplifiers) VO VDD / 2, VIC = VDD / 2, Nl d –40°C 31 54 50 86 µA No load 85°C 15 26 20 36 † Full range is –40°C to 80°C. NOTES: 4. The typical values of input bias current and input offset current below 5 pA were determined mathematically. 5. This range also applies to each input individually. 6. At VDD = 5 V, VO = 0.25 V to 2 V; at VDD = 10 V, VO = 1 V to 6 V.
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997 11POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 electrical characteristics at specified free-air temperature TLC1079I PARAMETER TEST CONDITIONS TA † VDD = 5 V VDD = 10 V UNIT MIN TYP MAX MIN TYP MAX VIO Input offset voltage 25°C 190 850 200 1150 µVVIO Input offset voltage VO = 1.4 V, VIC = 0, Full range 1350 1650 µV α VIO Temperature coefficient of input offset voltage R S = 50 Ω , R I = 1 MΩ 25°C to 85°C 1.1 1 µV/°C IIO Input offset current 25°C 0.1 0.1 pAIIO (see Note 4) VO = VDD / 2, 85°C 24 1000 26 1000 pA IIB Input bias current OD D , VIC = VDD / 2 25°C 0.6 0.7 pAIIB (see Note 4) 85°C 200 2000 220 2000 pA VICR Common-mode input voltage range 25°C –0.2 to 4 –0.3 to 4.2 –0.2 to 9 –0.3 to 9.2 V VICR voltage range (see Note 5) Full range –0.2 to 3.5 –0.2 to 8.5 V V 100 V 25°C 3.2 4.1 8.2 8.9 VOH High-level output voltageVID = 100 mV, R L =1M Ω –40°C 3.2 4.1 8.2 8.9 VR L = 1 M Ω 85°C 3.2 4.2 8.2 8.9 V 100 V 25°C 0 25 0 25 VOL Low-level output voltageVID = –100 mV, IOL =0 –40°C 0 25 0 25 mVIOL = 0 85°C 0 25 0 25 L i l diff ti l 25°C 250 525 500 850 AVD Large-signal differential voltage amplification R L = 1 MΩ, See Note 6 –40°C 250 900 500 1550 V/mVvoltage am lification 85°C 150 330 250 585 Cd 25°C 70 95 75 97 CMRR Common-mode rejection ratio VIC = VICRmin –40°C 70 95 75 97 dBrejection ratio 85°C 70 95 75 97 S l lt j ti V 5Vt 1 0V 25°C 75 98 75 98 kSVR Supply-voltage rejection ratio (ΔVDD /ΔVIO) VDD = 5 V to 10 V, VO =14V –40°C 75 98 75 98 dBratio (ΔVDD /ΔVIO) VO = 1.4 V 85°C 75 98 75 98 Supply current VV / 2 25°C 40 68 57 92 IDD Supply current (four amplifiers) VO = VDD / 2, VIC =V DD / 2 No load –40°C 62 108 98 172 µA(four am lifiers) VIC = VDD / 2, No load 85°C 29 52 40 72 † Full range is –40°C to 85°C. NOTES: 4. The typical values of input bias current and input offset current below 5 pA were determined mathematically. 5. This range also applies to each input individually. 6. At VDD = 5 V, VO = 0.25 V to 2 V; at VDD = 10 V, VO = 1 V to 6 V.
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997
12 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
operating characteristics at specified free-air temperature TLC1078I PARAMETER TEST CONDITIONS TA VDD = 5 V VDD = 10 V UNIT MIN TYP MAX MIN TYP MAX R1 M Ω C2 0 F 25°C 32 47 SR Slew rate at unity gain R L = 1 MΩ , VI(PP)=1V C L = 20 pF, See Figure 1 –40°C 39 59 V/msVI(PP) = 1 V, See Figure 1 85°C 25 34 Vn Equivalent input noise voltagef = 1 kHz, R S = 20 Ω 25°C 68 68 nV/√Hz 25°C 85 110 B1 Unity-gain bandwidth C L = 20 pF, See Figure 2 –40°C 130 155 kHz 85°C 55 80 25°C 34° 38° φm Phase margin at unity gain CL = 20 pF, See Figure 2 –40°C 38° 40° 85°C 28° 32° operating characteristics at specified free-air temperature TLC1079I PARAMETER TEST CONDITIONS TA VDD = 5 V VDD = 10 V UNIT MIN TYP MAX MIN TYP MAX R1 M Ω C2 0 F 25°C 32 47 SR Slew rate at unity gain R L = 1 MΩ , VI(PP)=1V C L = 20 pF, See Figure 1 –40°C 39 59 V/msVI(PP) = 1 V, See Figure 1 85°C 25 34 Vn Equivalent input noise voltagef = 1 kHz, R S = 20 Ω 25°C 68 68 nV/√Hz 25°C 85 110 B1 Unity-gain bandwidth C L = 20 pF, See Figure 2 –40°C 130 155 kHz 85°C 55 80 25°C 34° 38° φm Phase margin at unity gain CL = 20 pF, See Figure 2 –40°C 38° 42° 85°C 28° 32°
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997 13POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 electrical characteristics at specified operating free-air temperature TLC1078M PARAMETER TEST CONDITIONS TA † VDD = 5 V VDD = 10 V UNITCONDITIONS A MIN TYP MAX MIN TYP MAX VIO Input offset voltage VO = 1.4 V, 25°C 160 450 180 600 µVVIO Input offset voltage VO = 1.4 V, VIC = 0, Full range 1250 1400 µV α VIO Temperature coefficient of input offset voltage R S = 50 Ω , R L = 1 MΩ 25°C to 125°C 1.4 1.4 µV/°C IIO Input offset current 25°C 0.1 0.1 pA IIO (see Note 4) VO = VDD / 2, 125°C 1.4 15 1.8 15 nA IIB Input bias current OD D , VIC = VDD / 2 25°C 0.6 0.7 pA IIB In ut bias current (see Note 4) 125°C 9 35 10 35 nA VICR Common-mode input 25°C 0 to 4 –0.3 to 4.2 to 9 –0.3 to 9.2 V VICR Common mode in ut voltage range (see Note 5) Full range 0 to 3.5 to 8.5 V V 100 V 25°C 3.2 4.1 8.2 8.9 VOH High-level output voltage VID = 100 mV, R L=1M Ω –55°C 3.2 4.1 8.2 8.8 VR L= 1 M Ω 125°C 3.2 4.2 8.2 9 V 100 V 25°C 0 25 0 25 VOL Low-level output voltage VID = –100 mV, IOL =0 –55°C 0 25 0 25 mVIOL = 0 125°C 0 25 0 25 L i l diff ti l R1 M Ω 25°C 250 525 500 850 AVD Large-signal differential voltage amplification R L= 1 MΩ , See Note 6 –55°C 250 950 500 1750 V/mVvoltage am lification See Note 6 125°C 35 200 75 380 25°C 70 95 75 97 CMRR Common-mode rejection ratio VIC = VICRmin –55°C 70 95 75 97 dB 125°C 70 85 75 91 S l lt j ti ti 25°C 75 98 75 98 kSVR Supply-voltage rejection ratio (ΔVDD /ΔVIO) VO = 1.4 V –55°C 70 98 70 98 dB(ΔVDD /ΔVIO) 125°C 70 98 70 98 Sl t ( t VO = VDD / 2, 25°C 20 34 29 46 IDD Supply current (two amplifiers) VO VDD / 2, VIC = VDD / 2, Nl d –55°C 35 60 56 96 µAam lifiers) No load 125°C 14 24 18 30 † Full range is –55°C to 125°C. NOTES: 4. The typical values of input bias current and input offset current below 5 pA were determined mathematically. 5. This range also applies to each input individually. 6. At VDD = 5 V, VO = 0.25 V to 2 V; at VDD = 10 V, VO = 1 V to 6 V.
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997
14 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
electrical characteristics at specified free-air temperature TLC1079M PARAMETER TEST CONDITIONS TA † VDD = 5 V VDD = 10 V UNIT MIN TYP MAX MIN TYP MAX VIO Input offset voltage 25°C 190 850 200 1150 µVVIO Input offset voltage VO = 1.4 V,VIC = 0, Full range 1600 1900 µV α VIO Temperature coefficient of input offset voltage R S = 50 Ω , R I = 1 MΩ 25°C to IIO Input offset current 25°C 0.1 0.1 pA IIO (see Note 4) VO = VDD / 2, 125°C 1.4 15 1.8 15 nA IIB Input bias current OD D , VIC = VDD / 2 25°C 0.6 0.7 pA IIB (see Note 4) 125°C 9 35 10 35 nA VICR Common mode input 25°C 0 to 4 –0.3 to 4.2 to 9 –0.3 to 9.2 V VICR voltage range (see Note 5) Full range 0 to 3.5 to 8.5 V V 100 V 25°C 3.2 4.1 8.2 8.9 VOH High-level output voltageVID = 100 mV, R L =1M Ω –55°C 3.2 4.1 8.2 8.9 VR L = 1 M Ω 125°C 3.2 4.2 8.2 9 V 100 V 25°C 0 25 0 25 VOL Low-level output voltageVID = –100 mV, IOL =0 –55°C 0 25 0 25 mVIOL = 0 125°C 0 25 0 25 L i l diff ti l 25°C 250 525 500 850 AVD Large-signal differential voltage amplification R L = 1 MΩ , See Note 6 –55°C 250 950 500 1750 V/mVvoltage am lification 125°C 35 200 75 380 Cd j t i 25°C 70 95 75 97 CMRR Common-mode rejection ratio VIC = VICRmin –55°C 70 95 75 97 dBratio 125°C 70 85 75 91 S l lt j ti V 5Vt 1 0V 25°C 75 98 75 98 kSVR Supply voltage rejection ratio (ΔVDD /ΔVIO) VDD = 5 V to 10 V, VO =14V –55°C 70 98 70 98 dBratio (ΔVDD /ΔVIO) VO = 1.4 V 125°C 70 98 70 98 Supply current VV / 2 25°C 40 68 57 92 IDD Supply current (four amplifiers) VO = VDD / 2, VIC = VDD / 2, No load –55°C 69 120 111 192 µA(four am lifiers) VIC = VDD / 2, No load 125°C 27 48 35 60 † Full range is –55°C to 125°C. NOTES: 4. The typical values of input bias current and input offset current below 5 pA were determined mathematically. 5. This range also applies to each input individually. 6. At VDD = 5 V, VO = 0.25 V to 2 V; at VDD = 10 V, VO = 1 V to 6 V.
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997 15POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 operating characteristics at specified free-air temperature TLC1078M PARAMETER TEST CONDITIONS TA VDD = 5 V VDD = 10 V UNIT MIN TYP MAX MIN TYP MAX R1 M Ω C2 0 F 25°C 32 47 SR Slew rate at unity gain R L = 1 MΩ , VI(PP)=1V C L = 20 pF, See Figure 1 –55°C 41 63 V/msVI(PP) = 1 V, See Figure 1 125°C 20 27 Vn Equivalent input noise voltagef = 1 kHz, R S = 20 Ω 25°C 68 68 nV/√Hz 25°C 85 110 B1 Unity-gain bandwidth C L = 20 pF, See Figure 2 –55°C 140 165 kHz 125°C 45 70 25°C 34° 38° φm Phase margin at unity gain CL = 20 pF, See Figure 2 –55°C 39° 43° 125°C 25° 29° operating characteristics at specified free-air temperature TLC1079M PARAMETER TEST CONDITIONS TA VDD = 5 V VDD = 10 V UNIT MIN TYP MAX MIN TYP MAX R1 M Ω C2 0 F 25°C 32 47 SR Slew rate at unity gain R L = 1 MΩ , VI(PP)=1V C L = 20 pF, See Figure 1 –55°C 41 63 V/msVI(PP) = 1 V, See Figure 1 125°C 20 27 Vn Equivalent input noise voltagef = 1 kHz, R S = 20 Ω 25°C 68 68 nV/√Hz 25°C 85 110 B1 Unity gain bandwidth C L =2 0pF See Figure 2 –55°C 140 165 B1 Unity-gain bandw idth C L = 20 pF, See Figure 2 125°C 45 70 kHz 25°C 34° 38° kHz φ Phase margin at unity gain C L =2 0pF See Figure 2 –55°C 39° 43° φm Phase margin at unity gain C L = 20 pF, See Figure 2 125°C 25° 29°
16 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
NOTE A: C L includes fixture capacitance. Figure 1. Slew-Rate Test Circuit Figure 2. Unity-Gain Bandwidth and
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997 17POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TYPICAL CHARACTERISTICS Table of Graphs FIGURE α VIO Temperature coefficient of input offset voltageDistribution 3 – 6 IIB Input bias current vs Free-air temperature 7 IIO Input offset current vs Free-air temperature 7 VIC Common-mode input voltage vs Supply voltage 8 VOH High-level output voltage vs High-level output current vs Supply voltage vs Free-air temperature 9, 10 VOL Low-level output voltage vs Common-mode input voltage vs Differential input voltage vs Free-air temperature vs Low-level output current 13, 14 17, 18 AVD Large-signal differential voltage amplification vs Supply voltage vs Free-air temperature vs Frequency 21, 22 VOM Maximum peak output voltage vs Frequency 23 IDD Supply current vs Supply voltage vs Free-air temperature SR Slew rate vs Supply voltage vs Free-air temperature Normalized slew rate vs Free-air temperature 28 Vn Equivalent input noise voltage vs Frequency 29 B1 Unity-gain bandwidth vs Supply voltage vs Free-air temperature φm Phase margin vs Supply voltage vs Free-air temperature vs Capacitance load Phase shift vs Frequency 21, 22
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997
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–10 Percentage of Amplifiers – % α VIO – Temperature Coefficient – µV/°C –8 –6 –4 –2 0 2 4 6 8 ÏÏÏÏÏÏÏÏÏÏÏÏ
356 Amplifiers Tested From 8 Water Lots
ÏÏÏÏÏÏ VDD = 5 V ÏÏÏÏÏÏÏ ÏÏÏÏÏÏÏ TA = 25°C to 125°C ÏÏÏÏÏ P Package ÏÏÏÏÏ Outliers: ÏÏÏÏÏÏ ÏÏÏÏÏÏ (1) 19.2 µV/°C ÏÏÏÏÏÏ (1) 12.1 µV/°C DISTRIBUTION OF TLC1078 INPUT OFFSET VOLTAGE TEMPERATURE COEFFICIENT Figure 4 ÏÏÏÏÏ ÏÏÏÏÏ VDD = 10 V ÏÏÏÏÏÏ ÏÏÏÏÏÏ TA = 25°C to 125°C ÏÏÏÏ P Package ÏÏÏÏ Outliers: ÏÏÏÏÏ ÏÏÏÏÏ (1) 18.7 µV/°C ÏÏÏÏÏ (1) 11.6 µV/°C DISTRIBUTION OF TLC1078 INPUT OFFSET VOLTAGE TEMPERATURE COEFFICIENT 86420–2–4–6–8 α VIO – Temperature Coefficient – µV/°C Percentage of Amplifiers – % –10 ÏÏÏÏÏÏÏÏÏÏÏ –10 Percentage of Amplifiers – % α VIO – Temperature Coefficient – µV/°C –8 –6 –4 –2 0 2 46 8 DISTRIBUTION OF TLC1079 INPUT OFFSET VOLTAGE TEMPERATURE COEFFICIENT ÏÏÏÏÏÏÏÏÏÏÏÏ ÏÏÏÏÏÏÏÏÏÏÏÏ
356 Amplifiers Tested From 8 Wafer Lots
ÏÏÏÏÏÏ ÏÏÏÏÏÏ VDD = 5 V ÏÏÏÏÏÏÏ TA = 25°C to 125°C ÏÏÏÏÏ ÏÏÏÏÏ N Package ÏÏÏÏÏÏ ÏÏÏÏÏÏ Outliers: ÏÏÏÏÏ (1) 19.2 µV/°C ÏÏÏÏÏ ÏÏÏÏÏ (1) 12.1 µV/°C Figure 6 86420–2–4–6–8 α VIO – Temperature Coefficient – µV/°C Percentage of Amplifiers – % –10 DISTRIBUTION OF TLC1079 INPUT OFFSET VOLTAGE TEMPERATURE COEFFICIENT ÏÏÏÏÏ ÏÏÏÏÏ (1) 11.6 µV/°C ÏÏÏÏÏ (1) 18.7 µV/°C ÏÏÏÏ ÏÏÏÏ Outliers: ÏÏÏÏ ÏÏÏÏ N Package ÏÏÏÏÏÏ TA = 25°C to 125°C ÏÏÏÏ ÏÏÏÏ VDD = 10 V ÏÏÏÏÏÏÏÏÏÏÏ
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997
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TA = 25°C R L = 1 MΩ VID = 100 mV 1412108642 VDD – Supply Voltage – V HIGH-LEVEL OUTPUT VOLTAGE vs SUPPLY VOLTAGE – High-Level Output Voltage – VVOH Figure 12 VDD = 10 V VDD = 5 V IOH = –5 mA VID = 100 mV –1.7 –1.8 –1.9 –2.1 –2.2 –2.3 1007550250–25–50 –1.6 125 TA – Free-Air Temperature – °C –2.4 –75 VDD VDD VDD VDD VDD VDD VDD VDD VDD HIGH-LEVEL OUTPUT VOLTAGE † vs FREE-AIR TEMPERATURE – High-Level Output Voltage – VVOH Figure 13 LOW-LEVEL OUTPUT VOLTAGE vs COMMON-MODE INPUT VOLTAGE VID = –1 V VID = –100 mV VDD = 5 V IOL = 5 mA TA = 25°C 600 500 400 321 700 VIC – Common-Mode Input Voltage – V 300 – Low-Level Output Voltage – mVVOL Figure 14 VID = –100 mV VID = –2.5 V VID = –1 V TA = 25°C IOL = 5 mA VDD = 10 V 108642 500 450 400 350 300 VIC – Common-Mode Input Voltage – V 0250 LOW-LEVEL OUTPUT VOLTAGE vs COMMON-MODE INPUT VOLTAGE – Low-Level Output Voltage – mVVOL † Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices.
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997
22 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
TA = 0°C TA = –55°C 1800 1600 1400 1200 1000 800 600 400 200 141210864 2000 VDD – Supply Voltage – V LARGE-SIGNAL DIFFERENTIAL VOLTAGE AMPLIFICATION † vs SUPPLY VOLTAGE TA = –40°C ÏÏÏÏÏ TA = 125°C ÏÏÏÏ ÏÏÏÏ TA = 85°C ÏÏÏÏ ÏÏÏÏ TA =70 °C ÏÏÏÏ TA =25 °C ÏÏÏÏ ÏÏÏÏ R L = 1 MΩ AVD – Large-Signal Differential Á Á Á A VD Voltage Amplification – V/mV Figure 20 2000 200 400 600 800 1000 1200 1400 1600 1800 VDD = 10 V VDD = 5 V R L = 1 MΩ –7 5 TA – Free-Air Temperature – °C 125 –5 0 –2 5 0 25 50 75 100 LARGE SIGNAL DIFFERENTIAL VOLTAGE AMPLIFICATION † vs FREE-AIR TEMPERATURE AVD – Large-Signal Differential ÁÁ ÁÁ ÁÁ A VD Voltage Amplification – V/mV Phase Shift VDD = 5 V R L = 1 MΩ TA = 25°C Phase Shift 180° 30° 60° 90° 120° 150° 100 k10 k1 k10010 0.1 1 M f – Frequency – Hz LARGE-SIGNAL DIFFERENTIAL VOLTAGE AMPLIFICATION AND PHASE SHIFT vs FREQUENCY 106 105 104 103 102 101 ÏÏÏ ÏÏÏ AVD AVD – Large-Signal Differential ÁÁ ÁÁ A VD Voltage Amplification Figure 21 † Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices.
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997
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1007550250–25–50 125 TA – Free-Air Temperature – °C – Supply Current – –75 VDD = 5 V VDD = 10 V No Load VO = VDD /2 SUPPLY CURRENT † vs FREE-AIR TEMPERATURE IDD µ A Figure 26 1412108642 VDD – Supply Voltage – V SR – Slew Rate – V/ms TA = 25°C See Figure 1 VIPP = 1 V R L = 1 MΩ C L = 20 pF AV = 1 SLEW RATE vs SUPPLY VOLTAGE Figure 27 See Figure 1 AV = 1 R L = 1 MΩ C L = 20 pF60 1007550250–25–50 125 TA – Free-Air Temperature – °C –75 VIPP = 1 V VDD = 10 V VIPP = 2.5 V VDD = 5 V VIPP = 1 V VDD = 5 V VDD = 10 V VIPP = 5.5 V SLEW RATE † vs FREE-AIR TEMPERATURE SR – Slew Rate – V/ms Figure 28 1251007550250–25–50–75 AV = 1 C L = 20 pF R L = 1 MΩ VI(PP) = 1 V VDD = 5 V VDD = 10 V 0.6 0.7 0.8 0.9 1.1 1.2 1.3 1.4 0.5 TA – Free-Air Temperature – °C Normalized Slew Rate NORMALIZED SLEW RATE † 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.
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997
26 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
VI = 10 mV C L = 20 pF VDD = 5 V –75 – Phase Margin TA – Free-Air Temperature – °C 40° 125 20° –50 –25 0 25 50 75 100 24° 28° 32° 36° PHASE MARGIN † vs FREE-AIR TEMPERATURE φm Figure 34 VDD = 5 V TA = 25°C See Figure 2 VI = 10 mV C L – Capacitive Load – pF 37° 100 25° 20 40 60 80 27° 29° 31° 33° 35° PHASE MARGIN vs CAPACITIVE LOAD – Phase Marginφm † Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices.
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997 27POST 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
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997
28 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
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997 29POST 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
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997
30 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
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997 31POST 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)
16 PIN SHOWN
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.)
TLC1078, TLC1078Y, TLC1079, TLC1079Y LinCMOS µPOWER PRECISION OPERATIONAL AMPLIFIERS SLOS179 – FEBRUARY 1997
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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
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