TLE2142 TI | Alldatasheet

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TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 Copyright  1994, Texas Instruments Incorporated 5–1POST OFFICE BOX 655303 • DALLAS, TEXAS 75265

  • Low Noise 1 0 H z...1 5 n V /√Hz 1 k H z...10.5 nV/√Hz
  • 10000-pF Load Capability
  • 20-mA Min Short-Circuit Output Current
  • 27-V/µs Min Slew Rate
  • High Gain-Bandwidth Product...5.9 MHz
  • Low V IO . . . 750 µV Max at 25°C
  • Single or Split Supply
  • Fast Settling Time 340 ns to 0.1% 400 ns to 0.01%
  • Saturation Recovery... 150 ns
  • Large Output Swing VCC– +0.1 V to VCC+ – 1 V Vn – Equivalent Input Noise Voltage – nv/Hz SR – Slew Rate – V/xs 0.01 0.1 1 10 SLEW RATE vs LOAD CAPACITANCE 150 100 1 10 100 200 f – Frequency – Hz EQUIVALENT INPUT NOISE VOLTAGE vs FREQUENCY 250 1 k 10 k sµV/ nV/ HzVn VCC ± = ± 15 V AVD = –1 TA = 25°C SR + SR – VCC ± = ± 15 V R S = 20 Ω TA = 25°C TA = 125°C TA = –55°C C L – Load Capacitance – nF

description

The TLE2142 and TLE2142A devices are high-performance internally-compensated operational amplifiers built using Texas Instruments complementary bipolar Excalibur process. The TLE2142A is a tighter offset voltage grade of the TLE2142. Both are pin-compatible upgrades to standard industry products. AVAILABLE OPTIONS PACKAGED DEVICES CHIP TA VIOmax AT 25°C SMALL OUTLINE (D) CHIP CARRIER (FK) CERAMIC DIP (JG) PLASTIC DIP (P) CHIP FORM (Y) 0°Ct o7 0°C 750 µV TLE2142ACD — — TLE2142ACP —0°C to 70°C 1200 µV TLE2142CD — — TLE2142CP — –40°Ct o1 0 5°C 750 µV TLE2142AID — — TLC2142AIP TLE2142Y–40°C to 105°C 1200 µV TLE2142ID — — TLC2142IP TLE2142Y –55°Ct o1 2 5°C 750 µV TLE2142AMD TLE2142AMFK TLE2142AMJG TLC2142AMP —–55°C to 125°C 1200 µV TLE2142MD TLE2142MFK TLE2142MJG TLC2142MP The D packages are available taped and reeled. Add R suffix to device type (e.g., TLC2142ACDR). PRODUCTION DATA information is current as of publication date. Products conform to specifications per the terms of Texas Instruments standard warranty. Production processing does not necessarily include testing of all parameters.

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–2 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 description (continued) The design incorporates a patent-pending input stage that simultaneously achieves low audio-band noise of 10.5 nV/√Hz, with a 6-Hz 1/f corner and symmetrical 40-V/µs slew rate typically with loads up to 800 pF. The resulting low distortion and high power bandwidth are important in high-fidelity audio applications. A fast settling time of 340 ns to 0.1% of a 10-V step with a 2-kΩ /100-pF load is useful in fast actuator/positioning drivers. Under similar test conditions, settling time to 0.01% is 400 ns. The devices are stable with capacitive loads up to 10 nF, although the 6-MHz bandwidth decreases to 1.8 MHz at this high loading level. As such, the TLE2142 and TLE2142A are useful for low-droop sample-and-holds and direct buffering of long cables, including 4-mA to 20-mA current loops. The special design also exhibits an improved insensitivity to inherit integrated circuit component mismatches as is evidenced by a 750-µV maximum offset voltage and 1.7-µV/°C typical drift. Minimum common-mode rejection ratio and supply voltage rejection ratio are 85 dB and 90 dB, respectively. Device performance is relatively independent of supply voltage over the ± 2-V to ± 22-V range. Inputs can operate between V CC– –0.3 to VCC+ –1.8 V without inducing phase reversal, although excessive input current may flow out of each input exceeding the lower common-mode input range. The all-npn output stage provides a nearly rail-to-rail output swing of V CC– +0.1 to VCC+ –1 V under light current-loading conditions. The device can sustain shorts to either supply since output current is internally limited, but care must be taken to ensure that maximum package power dissipation is not exceeded. Both versions can also be used as comparators. Differential inputs of V CC ± can be maintained without damage to the device. Open-loop propagation delay with TTL supply levels is typically 200 ns. This gives a good indication as to output stage saturation recovery when the device is driven beyond the limits of recommended output swing. Both the TLE2142 and TLE2142A are available in a wide variety of packages, including both the industry-standard 8-pin small-outline version and chip form for high-density system applications. The C-suffix devices are characterized for operation from 0°C to 70°C, I-suffix devices from –40°C to 105°C, and M-suffix devices over the full military temperature range of –55°C to 125°C. 1OUT 1IN– 1IN+ VCC – VCC+ 2OUT 2IN– 2IN+ D, JG, OR P PACKAGE (TOP VIEW) 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 NC NC – No internal connection 2IN + CC –V VCC +

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–3POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 symbol (each amplifier) OUT IN+ IN– TLE2142Y chip information This chip, when properly assembled, displays characteristics similar to the TLE2142. Thermal compression or ultrasonic bonding may be used on the doped-aluminum bonding pads. Chips may be mounted with conductive epoxy or a gold-silicon preform. BONDING PAD ASSIGNMENTS CHIP THICKNESS: 15 TYPICAL BONDING PADS: 4 × 4 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)

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–4 POST OFFICE BOX 655303 DALLAS, TEXAS 75265• equivalent schematic (per amplifier) Q12 Q10 IN – IN+ Q1 Q4 Q17 R11 R10 C2 Q16 R4 R7 Q5 Q8 Q13 Q11 Q14 Q15 VCC+ VCC R12 Q18 Q19 Q20 Q21 Q24 R13 Q22 R14 R18 R19 R21 Q26 Q30 Q34 R24 Q37 R23 Q36 OUT R20 R22 Q35 Q32 Q33Q29 Q25 Q28 Q31 D8Q27Q23 R16 R15 R17 Transistors 65 Epi-FET 1 Diodes 14 Resistors 43 Capacitors 8 COMPONENT COUNT (total device)

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–5POST 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 will flow if input is brought below VCC– –0.3 V. 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 DERATING FACTOR TA = 70°C TA = 105°C TA = 125°CPACKAGE TA ≤ 25 C POWER RATING DERATING FACTOR ABOVE T A = 25°C TA 70 C POWER RATING TA 105 C POWER RATING TA 125 C POWER RATING D 725 mV 5.8 mW/°C 464 mW 261 mW 145 mW FK 1375 mV 11.0 mW/ °C 880 mW 495 mW 275 mW JG 1050 mV 8.4 mW/ °C 672 mW 378 mW 210 mW P 1000 mV 8.0 mW/°C 640 mW 360 mW 200 mW recommended operating conditions C SUFFIX I SUFFIX M SUFFIX UNIT MIN MAX MIN MAX MIN MAX UNIT Supply voltage, VCC ± ± 2 ± 22 ± 2 ± 22 ± 2 ± 22 V Common-mode input voltage VIC VCC = 5 V 0 2.9 0 2.7 0 2.7 VC ommon-mo de input voltage, VIC VCC ± = ± 15 V –15 12.9 –15 12.7 –15 12.7 V Operating free-air temperature, TA 0 70 –40 105 –55 125 °C

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–6 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 electrical characteristics at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2142C TLE2142AC UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage V2 5 V R5 0 Ω 25°C 220 1900 200 1500 µVVIO Input offset voltage V2 5 V R5 0 Ω Full range 2200 1800 µV α VIO Temperature coefficient of V2 5 V R5 0 Ω Full range 17 17 µV/°Cα VIO Temperature coefficient of input offset voltage VO = 2.5 V, R S = 50 Ω , Full range 1.7 1.7 µV/°C IIO Input offset current VO = 2.5 V, R S = 50 Ω , VIC = 2.5 V 25°C 8 100 8 100 nAIIO Input offset current Full range 150 150 nA IIB Input bias current µAIIB Input bias current Full range –2.1 –2.1 µA V Cd i R5 0 Ω 25°C 0 –0.3 0 –0.3 VV Cd i R5 0 Ω 25°C to 0.3 to to 0.3 to VVICR Common-mode input R S =5 0Ω 3 3.2 3 3.2 VVICR Common mode input voltage range R S = 50 Ω Fl l 0 0 Vgg Full range to tog 2.9 2.9 V Hi h l l l IOH = –150 µA 25°C 3.9 4.1 3.9 4.1 VV Hi h l l l IOH = –150 µA Full range 3.8 3.8 VVOH High-level output voltageIOH =– 15m A 25°C 3.8 4 3.8 4 VVOH High-level output voltage IOH = –1.5 mA Full range 3.7 3.7 V IOH = –15 mA 25°C 3.4 3.7 3.4 3.7 IOH = –15 mA Full range 3.4 3.4 V Lll l IOL = 150µA 25°C 75 125 75 125 V V Lll l IOL = 150 µA Full range 150 150 mV VOL Low-level output voltageIOL =15m A 25°C 150 225 150 225 m V VOL Low-level output voltage IOL = 1.5 mA Full range 250 250 IOL =1 5m A 25°C 1.2 1.4 1.2 1.4 VIOL = 15 mA Full range 1.5 1.5 V AVD Large-signal differentialVCC = ± 2.5 V, RL = 2 kΩ , 25°C 50 220 50 220 V/mVAVD Large signal differential voltage amplification VCC ± 2.5 V, RL 2 kΩ , VO = 1 V to –1.5 V Full range 25 25 V/m V ri Input resistance 25°C 70 70 M Ω ci Input capacitance 25°C 2.5 2.5 pF zo Open-loop output impedance f = 1 MHz 25°C 30 30 Ω CMRR Common-mode VIC =V ICRmin R S =5 0Ω 25°C 85 118 85 118 dBCMRR Common mode rejection ratio VIC = VICRm in,R S = 50 Ω Full range 80 80 dB kSVR Supply-voltage rejection VCC ± = ± 2.5 V to ± 15 V, 25°C 90 106 90 106 dBkSVR Supply voltage rejection ratio (ΔVCC ± /ΔVIO) VCC ± ± 2.5 V to ± 15 V, R S = 50Ω Full range 85 85 dB mAICC Supply current VO 2.5 V, No load, VIC = 2.5 V Full range 9.2 9.2 m A † Full range is 0°C to 70°C.

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–7POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 operating characteristics, VCC = 5 V, TA = 25°C PARAMETER TEST CONDITIONS TLE2142C TLE2142AC UNITPARAMETER TEST CONDITIONS MIN TYP MAX MIN TYP MAX UNIT SR+ Positive slew rate AVD = –1, R L = 2 kΩ †, 45 45 V/µs SR– Negative slew rate AVD = 1, R L = 2 kΩ †, C L = 500 pF 42 42 V/µs ts Settling time AVD = –1, To 0.1% 0.16 0.16 µsts Settling time AVD 1, 2.5-V step To 0.01% 0.22 0.22 µs Vn Equivalent input noise voltage R S = 20 Ω , f = 10 Hz 15 15 nV/√HzVn Equivalent input noise voltage R S = 20 Ω, f = 1 kHz 10.5 10.5 nV/√Hz VN(PP) Peak-to-peak equivalent f = 0.1 Hz to 1 Hz 0.48 0.48 µVVN(PP) Peak to peak equivalent input noise voltage f = 0.1 Hz to 10 Hz 0.51 0.51 µV In Equivalent input noise current f = 10 Hz 1.92 1.92 pA/√HzIn Equivalent input noise current f = 1 kHz 0.5 0.5 pA/√Hz T H D+N Total harmonic distortion plusVO = 1 V to 3 V,R L = 2 kΩ †, 0 0052% 0 0052%THD + N Total harmonic distortion plus noise VO 1 V to 3 V, AVD = 2, R L = 2 kΩ †, f = 10 kHz 0.0052% 0.0052% B1 Unity-gain bandwidth R L = 2 kΩ †, C L = 100 pF 5.9 5.9 MHz Gain-bandwidth product R L = 2 kΩ †,C L = 100 pF, 58 58 MHzG ain-bandw idth product R L = 2 kΩ †, C L = 100 pF, f = 100 kHz 5.8 5.8 MH z BOM Maximum output-swing VO(PP) = 2 V, R L = 2 kΩ †, 660 660 kHzBOM Maximum output swing bandwidth VO(PP) = 2 V, AVD = 1, R L 2 kΩ , C L = 100 pF 660 660 kHz φm Phase margin at unity gain R L = 2 kΩ †, C L = 100 pF 57° 57° † R L terminates at 2.5 V.

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–8 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 electrical characteristics at specified free-air temperature, VCC ± = ± 15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2142C TLE2142AC UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage V0 R5 0 Ω 25°C 290 1200 275 750 µVVIO Input offset voltage V0 R5 0 Ω Full range 1600 1200 µV α VIO Temperature coefficient of V0 R5 0 Ω Full range 17 17 µV/°Cα VIO Temperature coefficient of input offset voltage VIC = 0, R S = 50 Ω , Full range 1.7 1.7 µV/°C IIO Input offset current VIC = 0, VO = 0 R S = 50 Ω , 25°C 7 100 7 100 nAIIO Input offset current Full range 150 150 nA IIB Input bias current µAIIB Input bias current Full range –1.6 –1.6 µA V Cd i R5 0 Ω 25°C VV Cd i R5 0 Ω 25°C to 15.3 to to 15.3 to VVICR Common-mode input R S =5 0Ω 13 13.2 13 13.2 VVICR Common mode input voltage range R S = 50 Ω Fl l Vgg Full range to 15.3 to to 15.3 tog 12.9 13.1 12.9 13.1 V Mi i i k IO = –150 µA 25°C 13.8 14.1 13.8 14.1 VV Mi i i k IO = –150 µA Full range 13.7 13.7 VVOM Maximum positive peak IO =– 15m A 25°C 13.7 14 13.7 14 VVOM+ Maximum positive peak output voltage swing IO = –1.5 mA Full range 13.6 13.6 V IO = –15 mA 25°C 13.3 13.7 13.3 13.7 IO = –15 mA Full range 13.2 13.2 V Mi i k IO = 150µA VV Mi i k IO = 150 µA Full range–14.6 –14.6 VVOM Maximum negative peak IO =15m A VVOM– Maximum negative peak output voltage swing IO = 1.5 mA Full range–14.4 –14.4 V IO =1 5m A IO = 15 mA Full range–13.3 –13.3 AVD Large-signal differentialVO = ± 10 V 25°C 100 450 100 450 V/mVAVD Large signal differential voltage amplification VO = ± 10 V Full range 75 75 V/m V ri Input resistance R L = 2 kΩ 25°C 65 65 M Ω ci Input capacitance 25°C 2.5 2.5 pF zo Open-loop output impedance f = 1 MHz 25°C 30 30 Ω CMRR Common-mode VIC = VICRmin, 25°C 85 108 85 108 dBCMRR Common mode rejection ratio VIC VICRmin, R S = 50Ω Full range 80 80 dB kSVR Supply-voltage rejection VCC ± = ± 2.5 V to ± 15 V, 25°C 90 106 90 106 dBkSVR Supply voltage rejection ratio (ΔVCC ± /ΔVIO) VCC ± ± 2.5 V to ± 15 V, R S = 50 Ω Full range 85 85 dB IOS Short-circuit output currentVO =0 VID = 1 V 25°C –25 –50 –25 –50 mAIOS Short-circuit output current VO = 0 VID = –1 V 25°C 20 31 20 31 m A ICC Supply current VO =0 No load 25°C 6.9 9 6.9 9 mAICC Supply current VO = 0, N o load Full range 9.4 9.4 m A † Full range is 0°C to 70°C.

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–9POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 operating characteristics, VCC ± = ± 15 V, TA = 25°C PARAMETER TEST CONDITIONS TLE2142C TLE2142AC UNITPARAMETER TEST CONDITIONS MIN TYP MAX MIN TYP MAX UNIT SR+ Positive slew rate AVD = –1, R L = 2 kΩ , 27 45 27 45 V/µs SR– Negative slew rate AVD 1, C L = 500 pF R L 2 kΩ , 27 42 27 42 V/µs ts Settling time AVD = –1, To 0.1% 0.34 0.34 µsts Settling time AVD 1, 10-V step To 0.01% 0.4 0.4 µs Vn Equivalent input noise voltage R S = 20 Ω , f = 10 Hz 15 15 nV/√HzVn Equivalent input noise voltage R S = 20 Ω, f = 1 kHz 10.5 10.5 nV/√Hz VN(PP) Peak-to-peak equivalent inputf = 0.1 Hz to 1 Hz 0.48 0.48 µVVN(PP) Peak to peak equivalent input noise voltage f = 0.1 Hz to 10 Hz 0.51 0.51 µV In Equivalent input noise current f = 10 Hz 1.89 1.89 pA/√HzIn Equivalent input noise current f = 1 kHz 0.47 0.47 pA/√Hz T H D+N Total harmonic distortion plusVO (PP ) = 20 V, R L = 2 kΩ, 0 01% 0 01%THD + N Total harmonic distortion plus noise VO(PP) 20 V, AVD = 10, R L 2 kΩ, f = 10 kHz 0.01% 0.01% B1 Unity-gain bandwidth R L = 2 kΩ , C L = 100 pF 6 6 MHz Gain-bandwidth product R L = 2 kΩ ,C L = 100 pF, 59 59 MHzG ain-bandw idth product R L 2 kΩ ,C L 100 pF, f =100 kHz 5.9 5.9 MH z BOM Maximum output-swing VO (PP ) = 20 V, R L = 2 kΩ, 668 668 kHzBOM Maximum output swing bandwidth VO(PP) 20 V, AVD = 1, R L 2 kΩ, C L = 100 pF 668 668 kHz φm Phase margin at unity gain R L = 2 kΩ , C L = 100 pF 58° 58°

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–10 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 electrical characteristics at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2142I TLE2142AI UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage V2 5 V R5 0 Ω 25°C 220 1900 220 1500 µVVIO Input offset voltage V2 5 V R5 0 Ω Full range 2400 2000 µV α VIO Temperature coefficient V2 5 V R5 0 Ω Full range 17 17 µV/°Cα VIO Temperature coefficient of input offset voltageVO = 2.5 V, R S = 50 Ω, Full range 1.7 1.7 µV/°C IIO Input offset current VO = 2.5 V, VIC = 2.5 V R S = 50 Ω , 25°C 8 100 8 100 nAIIO Input offset current Full range 200 200 nA IIB Input bias current µAIIB Input bias current Full range –2.2 –2.2 µA V Cd i R5 0 Ω 25°C 0 –0.3 0 –0.3 VV Cd i R5 0 Ω 25°C to 0.3 to to 0.3 to VVICR Common-mode input R S =5 0Ω 3 3.2 3 3.2 VVICR Common mode input voltage range R S = 50 Ω Fl l 0 –0.3 0 –0.3 Vgg Full range to 0.3 to to 0.3 tog 2.7 2.9 2.7 2.9 V Hi h l l l IOH = –150 µA 3.9 4.1 3.9 4.1 VV Hi h l l l IOH = –1.5 mA 25°C 3.8 4 3.8 4 VVOH High-level output voltage IOH = –15 mA 3.4 3.7 3.4 3.7 VVOH High-level output voltage IOH = 100 µA 3.8 3.8 V IOH = 1 mA Full range 3.7 3.7 IOH = 10 mA 3.5 3.5 V Lll l IOl = 150 µA 75 125 75 125 mV V Lll l IOL = 1.5 mA 25°C 150 225 150 225 m V VOL Low-level output voltage IOL = 15 mA 1.2 1.4 1.2 1.4 V VOL Low-level output voltage IOL = 100 µA 175 175 mV IOL = 1 mA Full range 225 225 m V IOL = 10 mA 1.2 1.2 V AVD Large-signal differentialVIC = ± 2.5 V, R L = 2 kΩ , 25°C 50 220 50 220 V/mVAVD Large signal differential voltage amplification VIC ± 2.5 V, R L 2 kΩ , VO = 1 V to –1.5 V Full range 10 10 V/m V ri Input resistance 25°C 70 70 M Ω ci Input capacitance 25°C 2.5 2.5 pF zo Open-loop output impedance f = 1 MHz 25°C 30 30 Ω CMRR Common-mode rejection VIC =V ICRmin R S =5 0Ω 25°C 85 118 85 118 dBCMRR Common mode rejection ratio VIC = VICRm in, R S = 50 Ω Full range 80 80 dB kSVR Supply-voltage rejectionVCC ± = ± 2.5 V to ± 15 V, 25°C 90 106 90 106 dBkSVR Supply voltage rejection ratio (ΔVCC ± /ΔVIO) VCC ± ± 2.5 V to ± 15 V, R S = 50Ω Full range 85 85 dB mAICC Supply current O ,, VIC = 2.5 V Full range 9.2 9.2 m A † Full range is – 40°C to 105°C.

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–11POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 operating characteristics, VCC = 5 V, TA = 25°C PARAMETER TEST CONDITIONS TLE2142I TLE2142AI UNITPARAMETER TEST CONDITIONS MIN TYP MAX MIN TYP MAX UNIT SR+ Positive slew rate AVD = –1, R L = 2 kΩ †, 45 45 V/µs SR– Negative slew rate AVD = 1, R L = 2 kΩ †, C L = 500 pF 42 42 V/µs ts Settling time AVD = –1, To 0.1% 0.16 0.16 µsts Settling time AVD 1, 2.5-V step To 0.01% 0.22 0.22 µs Vn Equivalent input noise voltage R S = 20 Ω , f = 10 Hz 15 15 nV/√HzVn Equivalent input noise voltage R S = 20 Ω, f = 1 kHz 10.5 10.5 nV/√Hz VN(PP) Peak-to-peak equivalent inputf = 0.1 Hz to 1 Hz 0.48 0.48 µVVN(PP) Peak to peak equivalent input noise voltage f = 0.1 Hz to 10 Hz 0.51 0.51 µV In Equivalent input noise current f = 10 Hz 1.92 1.92 pA/√HzIn Equivalent input noise current f = 1 kHz 0.5 0.5 pA/√Hz T H D+N Total harmonic distortion plusVO = 1 V to 3 V,R L = 2 kΩ †, 0 0052% 0 0052%THD + N Total harmonic distortion plus noise VO = 1 V to 3 V, AVD = 2, R L = 2 kΩ †, f = 10 kHz 0.0052% 0.0052% B1 Unity-gain bandwidth R L = 2 kΩ †, C L = 100 pF 5.9 5.9 MHz Gain-bandwidth product R L = 2 kΩ †,C L = 100 pF, 58 58 MHzG ain-bandw idth product R L = 2 kΩ †, C L = 100 pF, f = 100 kHz 5.8 5.8 MH z BOM Maximum output-swing VO(PP) = 2 V, R L = 2 kΩ †, 660 660 kHzBOM Maximum output swing bandwidth VO(PP) = 2 V, AVD = 1, R L 2 kΩ , C L = 100 pF 660 660 kHz φm Phase margin at unity gain R L = 2 kΩ †, C L = 100 pF 57° 57° † R L terminates at 2.5 V.

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–12 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 electrical characteristics at specified free-air temperature, VCC ± = ± 15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2142I TLE2142I UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage V0 R5 0 Ω 25°C 290 1200 275 750 µVVIO Input offset voltage V0 R5 0 Ω Full range 1800 1400 µV α VIO Temperature coefficient of V0 R5 0 Ω Full range 17 17 µV/°Cα VIO Temperature coefficient of input offset voltage VIC = 0, R S = 50 Ω, Full range 1.7 1.7 µV/°C IIO Input offset current VIC = 0, VO = 0 R S = 50 Ω , 25°C 7 100 7 100 nAIIO Input offset current Full range 200 200 nA IIB Input bias current µAIIB Input bias current Full range –1.7 –1.7 µA V Cd i R5 0 Ω 25°C VV Cd i R5 0 Ω 25°C to 15.3 to to 15.3 to VVICR Common-mode input R S =5 0Ω 13 13.2 13 13.2 VVICR Common mode input voltage range R S = 50 Ω Fl l Vgg Full range to 15.3 to to 15.3 tog 12.7 12.9 12.7 12.9 V Mi i i k IO = –150 µA 25°C 13.8 14.1 13.8 14.1 VV Mi i i k IO = –1.5 mA 25°C 13.7 14 13.7 14 VVOM Maximum positive peak IO = –15 mA 13.3 13.7 13.3 13.7 VVOM+ Maximum positive peak output voltage swing IO = –100 µA Fl l 13.7 13.7 V IO = –1 mA Full range 13.6 13.6 IO = –10 mA g 13.3 13.3 V Mi i k IO = 150 µA 25°C VV Mi i k VVOM Maximum negative peak IO = 15 mA –13.4 –13.8 –13.4 –13.8 VVOM– Maximum negative peak output voltage swing IO = 100 µA Fl l –14.6 –14.6 V IO = 1 mA Full range–14.5 –14.5 IO = 10 mA g –13.4 –13.4 AVD Large-signal differentialVO = ± 10 V RL =2k Ω 25°C 100 450 100 450 V/mVAVD Large signal differential voltage amplification VO = ± 10 V, R L = 2 kΩ Full range 40 40 V/m V ri Input resistance 25°C 65 65 M Ω ci Input capacitance 25°C 2.5 2.5 pF zo Open-loop output impedancef = 1 MHz 25°C 30 30 Ω CMRR Common-mode rejection VIC = VICRmin 25°C 85 108 85 108 dBCMRR Common mode rejection ratio R S = 50Ω Full range 80 80 dB kSVR Supply-voltage rejection VCC ± = ± 2.5 V to± 15 V, 25°C 90 106 90 106 dBkSVR Supply voltage rejection ratio (ΔVCC ± /ΔVIO) VCC ± ± 2.5 V to± 15 V, R S = 50Ω Full range 85 85 dB IOS Short-circuit output currentVO =0 VID = 1 V 25°C –25 –50 –25 –50 mAIOS Short-circuit output current VO = 0 VID = –1 V 25°C 20 31 20 31 m A ICC Supply current VO = 0 No load 25°C 6.9 9 6.9 9 mAICC Supply current VO = 0, N o load Full range 9.4 9.4 m A † Full range is –40°C to 105°C.

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–13POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 operating characteristics, VCC ± = ± 15 V, TA = 25°C PARAMETER TEST CONDITIONS TLE2142I TLE2142AI UNITPARAMETER TEST CONDITIONS MIN TYP MAX MIN TYP MAX UNIT SR+ Positive slew rate AVD = –1, R L = 2 kΩ , 30 45 30 45 V/µs SR– Negative slew rate AVD 1, R L 2 kΩ , C L = 500 pF 30 42 30 42 V/µs ts Settling time AVD = –1, To 0.1% 0.34 0.34 µsts Settling time AVD 1, 10-V step To 0.01% 0.4 0.4 µs Vn Equivalent input noise voltage R S = 20 Ω, f = 10 Hz 15 15 nV/√HzVn Equivalent input noise voltage R S = 20 Ω, f = 1 kHz 10.5 10.5 nV/√Hz VN(PP) Peak-to-peak equivalent inputf = 0.1 Hz to 1 Hz 0.48 0.48 µVVN(PP) Peak to peak equivalent input noise voltage f = 0.1 Hz to 10 Hz 0.51 0.51 µV In Equivalent input noise current f = 10 Hz 1.89 1.89 pA/√HzIn Equivalent input noise current f = 1 kHz 0.47 0.47 pA/√Hz T H D+N Total harmonic distortion plusVO (PP ) = 20 V, R L = 2 kΩ, 0 01% 0 01%THD + N Total harmonic distortion plus noise VO(PP) 20 V, AVD = 10, R L 2 kΩ, f = 10 kHz 0.01% 0.01% B1 Unity-gain bandwidth R L = 2 kΩ , C L = 100 pF 6 6 MHz Gain-bandwidth product R L = 2 kΩ ,C L = 100 pF, 59 59 MHzG ain-bandw idth product R L 2 kΩ ,C L 100 pF, f =100 kHz 5.9 5.9 MH z BOM Maximum output-swing VO (PP ) = 20 V, R L = 2 kΩ, 668 668 kHzBOM Maximum output swing bandwidth VO(PP) 20 V, AVD = 1, R L 2 kΩ, C L = 100 pF 668 668 kHz φm Phase margin at unity gain R L = 2 kΩ , C L = 100 pF 58° 58°

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–14 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 electrical characteristics at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2142M TLE2142AM UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage V2 5 V R5 0 Ω 25°C 220 1900 200 1500 µVVIO Input offset voltage V2 5 V R5 0 Ω Full range 2600 2200 µV α VIO Temperature coefficient V2 5 V R5 0 Ω Full range 17 17 µV/°Cα VIO Temperature coefficient of input offset voltageVO = 2.5 V, R S = 50 Ω , Full range 1.7 1.7 µV/°C IIO Input offset current VO = 2.5 V, VIC = 2.5 V R S = 50 Ω , 25°C 8 100 8 100 nAIIO Input offset current Full range 200 200 nA IIB Input bias current µAIIB Input bias current Full range –2.3 –2.3 µA V Cd i R5 0 Ω 25°C 0 –0.3 0 –0.3 VV Cd i R5 0 Ω 25°C to 0.3 to to 0.3 to VVICR Common-mode input R S =5 0Ω 3 3.2 3 3.2 VVICR Common mode input voltage range R S = 50 Ω Fl l 0 –0.3 0 –0.3 Vgg Full range to 0.3 to to 0.3 tog 2.7 2.9 2.7 2.9 V Hi h l l IOH = –150 µA 25°C 3.9 4.1 3.9 4.1 VV Hi h l l IOH = –1.5 mA 25°C 3.8 4 3.8 4 VVOH High-level output IOH = –15 mA 3.4 3.7 3.4 3.7 VVOH High level output voltage IOH = 100 µA Fl l 3.75 3.75 V IOH = 1 mA Full range 3.65 3.65 IOH = 10 mA g 3.45 3.45 V Lll IOL = 150 µA 25°C 75 125 75 125 mV V Lll IOL = 1.5 mA 25°C 150 225 150 225 m V VOL Low-level output IOL = 15 mA 1.2 1.4 1.2 1.4 V VOL Low level output voltage IOL = 100 µA Fl l 200 200 mV IOL = 1 mA Full range 250 250 m V IOL = 10 mA g 1.25 1.25 V AVD Large-signal differentialVIC = ± 2.5 V, R L = 2 kΩ , 25°C 50 220 50 220 V/mVAVD Large signal differential voltage amplification VIC ± 2.5 V, R L 2 kΩ , VO = 1 V to –1.5 V Full range 5 5 V/m V ri Input resistance 25°C 70 70 M Ω ci Input capacitance 25°C 2.5 2.5 pF zo Open-loop output impedance f = 1 MHz 25°C 30 30 Ω CMRR Common-mode VIC =V ICRmin R S =5 0Ω 25°C 85 118 85 118 dBCMRR Common mode rejection ratio VIC = VICRm in, R S = 50 Ω Full range 80 80 dB kSVR Supply-voltage rejectionVCC ± = ± 2.5 V to ± 15 V, 25°C 90 106 90 106 dBkSVR Supply voltage rejection ratio (ΔVCC ± /ΔVIO) VCC ± ± 2.5 V to ± 15 V, R S = 50Ω Full range 85 85 dB mAICC Supply current VO 2.5 V, No load, VIC = 2.5 V Full range 9.2 9.2 m A † Full range is – 55°C to 125°C.

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–15POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 operating characteristics, VCC = 5 V, TA = 25°C PARAMETER TEST CONDITIONS TLE2142M TLE2142AM UNITPARAMETER TEST CONDITIONS MIN TYP MAX MIN TYP MAX UNIT SR+ Positive slew rate AVD = –1, R L = 2 kΩ †, 45 45 V/µs SR– Negative slew rate AVD = 1, R L = 2 kΩ †, C L = 500 pF 42 42 V/µs ts Settling time AVD = –1, To 0.1% 0.16 0.16 µsts Settling time AVD 1, 2.5-V step To 0.01% 0.22 0.22 µs Vn Equivalent input noise voltage R S = 20 Ω , f = 10 Hz 15 15 nV/√HzVn Equivalent input noise voltage R S = 20 Ω, f = 1 kHz 10.5 10.5 nV/√Hz VN(PP) Peak-to-peak equivalent f = 0.1 Hz to 1 Hz 0.48 0.48 µVVN(PP) Peak to peak equivalent input noise voltage f = 0.1 Hz to 10 Hz 0.51 0.51 µV In Equivalent input noise current f = 10 Hz 1.92 1.92 pA/√HzIn Equivalent input noise current f = 1 kHz 0.5 0.5 pA/√Hz T H D+N Total harmonic distortion plusVO = 1 V to 3 V,R L = 2 kΩ †, 0 0052% 0 0052%THD + N Total harmonic distortion plus noise VO 1 V to 3 V, AVD = 2, R L = 2 kΩ †, f = 10 kHz 0.0052% 0.0052% B1 Unity-gain bandwidth R L = 2 kΩ †, C L = 100 pF 5.9 5.9 MHz Gain-bandwidth product R L = 2 kΩ †,C L = 100 pF 58 58 MHzG ain-bandw idth product R L = 2 kΩ †, C L = 100 pF f = 100 kHz 5.8 5.8 MH z BOM Maximum output-swing VO(PP) = 2 V, R L = 2 kΩ †, 660 660 kHzBOM Maximum output swing bandwidth VO(PP) = 2 V, AVD = 1, R L 2 kΩ , C L = 100 pF 660 660 kHz φm Phase margin R L = 2 kΩ †, C L = 100 pF 57° 57° † R L terminates at 2.5 V.

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–16 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 electrical characteristics at specified free-air temperature, VCC ± = ± 15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA † TLE2142M TLE2142AM UNITPARAMETER TEST CONDITIONS TA † MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage V0 R5 0 Ω 25°C 290 1200 275 750 µVVIO Input offset voltage V0 R5 0 Ω Full range 2000 1600 µV α VIO Temperature coefficient of V0 R5 0 Ω Full range 17 17 µV/°Cα VIO Temperature coefficient of input offset voltage VIC =0 R S =5 0Ω Full range 1.7 1.7 µV/°C IIO Input offset current VIC = 0, R S = 50 Ω 25°C 7 100 7 100 nAIIO Input offset current Full range 250 250 nA IIB Input bias current µAIIB Input bias current Full range –1.8 –1.8 µA V Cd i R5 0 Ω 25°C VV Cd i R5 0 Ω 25°C to 15.3 to to 15.3 to VVICR Common-mode input R S =5 0Ω 13 13.2 13 13.2 VVICR Common mode input voltage range R S = 50 Ω Fl l Vgg Full range to 15.3 to to 15.3 tog 12.7 12.9 12.7 12.9 V Mi i i k IO = –150 µA 25°C 13.8 14.1 13.8 14.1 VV Mi i i k IO = –1.5 mA 25°C 13.7 14 13.7 14 VVOM Maximum positive peak IO = –15 mA 13.3 13.7 13.3 13.7 VVOM+ Maximum positive peak output voltage swing IO = –100 µA Fl l 13.7 13.7 V IO = –1 mA Full range 13.6 13.6 IO = –10 mA g 13.3 13.3 V Mi i k IO = 150 µA 25°C VV Mi i k VVOM Maximum negative peak IO = 15 mA –13.4 –13.8 –13.4 –13.8 VVOM– Maximum negative peak output voltage swing IO = 100 µA Fl l –14.6 –14.6 V IO = 1 mA Full range–14.5 –14.5 IO = 10 mA g –13.4 –13.4 AVD Large-signal differentialVO = ± 10 V R L =2k Ω 25°C 100 450 100 450 V/mVAVD Large signal differential voltage amplification VO = ± 10 V, R L = 2 kΩ Full range 20 20 V/m V ri Input resistance 25°C 65 65 M Ω ci Input capacitance 25°C 2.5 2.5 pF zo Open-loop output impedance f = 1 MHz 25°C 30 30 Ω CMRR Common-mode rejection VIC = VICRmin, 25°C 85 108 85 108 dBCMRR Common mode rejection ratio VIC VICRmin, R S = 50Ω Full range 80 80 dB kSVR Supply-voltage rejectionVCC ± = ± 2.5 V to± 15 V, 25°C 90 106 90 106 dBkSVR Supply voltage rejection ratio (ΔVCC ± /ΔVIO) VCC ± ± 2.5 V to± 15 V, R S = 50Ω Full range 85 85 dB IOS Short-circuit output currentVO =0 VID = 1 V 25°C –25 –50 –25 –50 mAIOS Short-circuit output current VO = 0 VID = –1 V 25°C 20 31 20 31 m A ICC Supply current VO = 0, No load, 25°C 6.9 9 6.9 9 mAICC Supply current VO 0, No load, VIC = 2.5 V Full range 9.4 9.4 m A † Full range is –55°C to 125°C.

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–17POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 operating characteristics, VCC ± = ± 15 V, TA = 25°C PARAMETER TEST CONDITIONS TLE2142M TLE2142AM UNITPARAMETER TEST CONDITIONS MIN TYP MAX MIN TYP MAX UNIT SR+ Positive slew rate R L = 2 kΩ ,A VD = –1, 27 45 27 45 V/µs SR– Negative slew rate R L 2 kΩ ,A VD 1, C L = 100 pF 27 42 27 42 V/µs ts Settling time AVD = –1, To 0.1% 0.34 0.34 µsts Settling time AVD 1, 10-V step To 0.01% 0.4 0.4 µs Vn Equivalent input noise voltage R S = 20 Ω , f = 10 Hz 15 15 nV/√HzVn Equivalent input noise voltage R S = 20 Ω, f = 1 kHz 10.5 10.5 nV/√Hz VN(PP) Peak-to-peak equivalent inputf = 0.1 Hz to 1 Hz 0.48 0.48 µVVN(PP) Peak to peak equivalent input noise voltage f = 0.1 Hz to 10 Hz 0.51 0.51 µV In Equivalent input noise current f = 10 Hz 1.89 1.89 pA/√HzIn Equivalent input noise current f = 1 kHz 0.47 0.47 pA/√Hz T H D+N Total harmonic distortion plusVO (PP ) = 20 V,R L = 2 kΩ, 0 01% 0 01%THD + N Total harmonic distortion plus noise VO(PP) 20 V, AVD = 10, R L 2 kΩ, f = 10 kHz 0.01% 0.01% B1 Unity-gain bandwidth R L = 2 kΩ , C L = 100 pF 6 6 MHz Gain-bandwidth product R L = 2 kΩ ,C L = 100 pF, 59 59 MHzG ain-bandw idth product R L 2 kΩ ,C L 100 pF, f = 100 kHz 5.9 5.9 MH z BOM Maximum output-swing bandwidthVO (PP ) = 20 V,R L = 2 kΩ , 668 668 kHzBOM M aximum ou tput-swing bandw idth VO(PP) 20 V, AVD = 1, R L 2 kΩ , C L = 100 pF 668 668 kHz φm Phase margin at unity gain R L = 2 kΩ , C L = 100 pF 58° 58°

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–18 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 electrical characteristics at specified free-air temperature, VCC ± = ± 15 V, TA = 25°C PARAMETER TEST CONDITIONS TLE2142Y UNITPARAMETER TEST CONDITIONS MIN TYP MAX UNIT VIO Input offset voltage V0 R 5 0 Ω 150 875 µV IIO Input offset current VIC = 0, R S = 50Ω , VO = 0 7 100 nA IIB Input bias current VO = 0 –0.7 –1.5 µA V Cd i l R5 0 Ω –15 –15.3 VVICR Common-mode input voltage range R S = 50 Ω to 15.3 to VICR pg g S 13 13.2 V Mi i i k l i IO = –150 µA 13.8 14.1 VVOM+ Maximum positive peak output voltage swing IO = –1.5 /C0109A 13.7 14 VOM+ pp pg g IO = –15 mA 13.3 13.7 V Mi i k l i IO = 150 µA –14.7 –14.9 VVOM– Maximum negative peak output voltage swing IO = 1.5 mA –14.5 –14.8 VOM gp p g g IO = 15 mA –13.4 –13.8 AVD Large-signal differential voltage amplification VO = ± 10 V R L =2k Ω 100 450 V/mVAVD Large-signal differential voltage amplification VO = ± 10 V, R L = 2 kΩ 100 450 V/m V ri Input resistance 65 M Ω ci Input capacitance 2.5 pF zo Open-loop output impedance f = 1 MHz 30 Ω CMRR Common-mode rejection ratio VIC = VICRmin, R S = 50Ω 80 108 dB kSVR Supply-voltage rejection ratio (ΔVCC ± /ΔVIO) VCC ± = ± 2.5 V to ± 15 V, 85 106 dBkSVR Supply-voltage rejection ratio (ΔVCC ± /ΔVIO) VCC ± ± 2.5 V to ± 15 V, R S = 50Ω 85 106 dB IOS Short-circuit output current VO =0 VID = 1 V –25 –50 mAIOS Short-circuit output current VO = 0 VID = –1 V 20 31 m A ICC Supply current VO = 0, No load 6.9 9 mA

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–19POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TYPICAL CHARACTERISTICS Table of Graphs FIGURE VIO Input offset voltage Distribution 1 IIO Input offset current vs Free-air temperature 2 IIB Input bias current vs Free-air temperature 3IIB Input bias current p vs Common-mode input voltage 4 V Mi i i k l vs Supply voltage 5 VOM+ Maximum positive peak output voltage vs Supply voltage vs Free-air temperature 6OM+ pp pg p vs Output current 7 V Mi i k l vs Supply voltage 5 VOM– Maximum negative peak output voltage vs Supply voltage vs Free-air temperature 6OM gp p g p vs Output current 8 VOM Maximum peak output voltage vs Settling time 9 VO(PP) Maximum peak-to-peak output voltage vs Frequency 10 VOH High-level output voltage vs Output current 11 VOL Low-level output voltage vs Output current 12 AVD Large-signal differential voltage amplificationvs Free-air temperature 13AVD Large-signal differential voltage amplification p vs Frequency 14 zo Closed-loop output impedance vs Frequency 15 IOS Short-circuit output current vs Free-air temperature 16 CMRR Common-mode rejection ratio vs Frequency 17CMRR C ommon-mo de rejection ratio qy vs Free-air temperature 18 kSVR Supply voltage rejection ratio vs Frequency 19kSVR Supply voltage rejection ratio qy vs Free-air temperature 20 ICC Supply current vs Free-air temperature 21ICC Supply current p vs Supply voltage 22 Vn Noise voltage vs Frequency 23 Vn N oise voltage Over a 10-second period 24 In Equivalent input noise current vs Frequency 25 THD+ N Total harmonic distortion plus noise vs Frequency 26 SR Slew rate vs Free-air temperature 27SR Slew rate p vs Load capacitance 28 Noninverting large signalvs Time 29 Pulse response Inverting large signal vs Time 30 Small signal vs Time 31 B1 Unity-gain bandwidth vs Load capacitance 32 Gain margin vs Load capacitance 33 φm Phase margin vs Load capacitance 34 Phase shift vs Frequency 14

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–20 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TYPICAL CHARACTERISTICS † –400 Percentage of Units – % 400 800 TLE2142 DISTRIBUTION OF INPUT OFFSET VOLTAGE VIO – Input Offset Voltage – µV IIO – Input Offset Current – nA IIO INPUT OFFSET CURRENT vs FREE-AIR TEMPERATURE –75 –50 –25 0 25 50 75 100 125 TA – Free-Air Temperature – °C 150

236 Units Tested From 1 Wafer Lot

VCC ± = ± 15 V VCC ± = ± 2.5 V VO = 0 VIC = 0VCC ± = ± 15 V TA = 25°C P Package –800 –200 200 600–600 Figure 1 Figure 2 –2–2.5 – 0.2 IIB – Input Bias Current – nA –1000IIB INPUT BIAS CURRENT vs FREE-AIR TEMPERATURE TA – Free-Air Temperature – °C –75 –50 –25 0 25 50 75 100 125 150 –1.5 –1 IIB – Input Bias Current – uA 0 0.5 1 INPUT BIAS CURRENT vs COMMON-MODE INPUT VOLTAGE µ AIIB VIC – Common-Mode Input Voltage – V VO = 0 VIC = 0 VCC ± = ± 2.5 V VCC ± = ± 2.5 V VCC ± = ± 15 V TA = 25°C TA = 125°C TA = –55°C –900 –800 –700 –600 –500 – 0.4 – 0.6 – 0.8 –3 –0.5 – 1.2 – 1.4 Figure 3 Figure 4 † Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices.

TLE2142, TLE2142A, TLE2142Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS SLOS064B – DECEMBER 1990 – REVISED AUGUST 1994 5–22 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TYPICAL CHARACTERISTICS † V(OPP) – Maximum Peak-to-Peak Output Voltage – V VOM – Maximum Peak Output Voltage – V –7.5 –10 –12.5 0 100 200 300 400 500 2.5 7.5 12.5 Settling Time (ns) V OM MAXIMUM PEAK OUTPUT VOLTAGE vs SETTLING TIME MAXIMUM PEAK-TO-PEAK OUTPUT VOLTAGE vs FREQUENCY 100 k 400 k 1 M f – Frequency – Hz V O(PP)

4 M 10 M

AVD = –1 VCC ± = ± 15 V TA = 25°C VCC ± = ± 15 V R L = 2 kΩ TA = 125°C TA = –55°C TA = 25°C Rising Falling 0.1% 0.01% 0.01% 0.1% –2.5 Figure 9 Figure 10 3.6 3.4 4.6 –1 –10 V0H – High-Level Output Voltage – V 4.4 4.2 HIGH-LEVEL OUTPUT VOLTAGE vs OUTPUT CURRENT V OH IO – Output Current – mA –100 200 1000 0.1 1 10 VOL – Low-Level Output Voltage – mV 800 600 400 LOW-LEVEL OUTPUT VOLTAGE vs OUTPUT CURRENT V OL IO – Output Current – mA 100 1400 1200 TA = –55°C TA = –55°C TA = 125°CTA = 125°C TA = 25°C VCC = 5 V VCC = 5 V 3.8 TA = 25°C –0.1 Figure 11 Figure 12 † Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices.

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