TLE2141, TLE2141A, TLE2141Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION OPERATIONAL AMPLIFIERS

Similar documents
TLE214x, TLE214xA, TLE214xY EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION OPERATIONAL AMPLIFIERS

TLE206x, TLE206xA, TLE206xB, TLE206xY EXCALIBUR JFET-INPUT HIGH-OUTPUT-DRIVE

MC1458, MC1558 DUAL GENERAL-PURPOSE OPERATIONAL AMPLIFIERS

MC1458, MC1558 DUAL GENERAL-PURPOSE OPERATIONAL AMPLIFIERS

RC4558, RC4558Y, RM4558, RV4558 DUAL GENERAL-PURPOSE OPERATIONAL AMPLIFIERS

GENERAL-PURPOSE OPERATIONAL AMPLIFIERS

LM148, LM248, LM348 QUADRUPLE OPERATIONAL AMPLIFIERS

TL494C, TL494I, TL494M, TL494Y PULSE-WIDTH-MODULATION CONTROL CIRCUITS

LM101A, LM201A, LM301A HIGH-PERFORMANCE OPERATIONAL AMPLIFIERS

TL070 JFET-INPUT OPERATIONAL AMPLIFIER

LM139, LM139A, LM239, LM239A, LM339 LM339A, LM339Y, LM2901, LM2901Q QUAD DIFFERENTIAL COMPARATORS SLCS006C OCTOBER 1979 REVISED NOVEMBER 1996

TL594C, TL594I, TL594Y PULSE-WIDTH-MODULATION CONTROL CIRCUITS

GENERAL-PURPOSE OPERATIONAL AMPLIFIERS

ua747c, ua747m DUAL GENERAL-PURPOSE OPERATIONAL AMPLIFIERS

LM101A, LM201A, LM301A HIGH-PERFORMANCE OPERATIONAL AMPLIFIERS

TLC252, TLC252A, TLC252B, TLC252Y, TLC25L2, TLC25L2A, TLC25L2B TLC25L2Y, TLC25M2, TLC25M2A, TLC25M2B, TLC25M2Y LinCMOS DUAL OPERATIONAL AMPLIFIERS

RC4136, RM4136, RV4136 QUAD GENERAL-PURPOSE OPERATIONAL AMPLIFIERS

NE5532, NE5532A DUAL LOW-NOISE OPERATIONAL AMPLIFIERS

LM158, LM158A, LM258, LM258A LM358, LM358A, LM2904, LM2904Q DUAL OPERATIONAL AMPLIFIERS

AVAILABLE OPTIONS CERAMIC DIP (J) CERAMIC DIP (JG) TL071CPWLE 6 mv TL071ACD TL071ACP 3 mv TL071BCD TL071BCP TL072CP

UC284x, UC384x, UC384xY CURRENT-MODE PWM CONTROLLERS

TLC254, TLC254A, TLC254B, TLC254Y, TLC25L4, TLC25L4A, TLC25L4B TLC25L4Y, TLC25M4, TLC25M4A, TLC25M4B, TLC25M4Y LinCMOS QUAD OPERATIONAL AMPLIFIERS

TL494M PULSE-WIDTH-MODULATION CONTROL CIRCUIT

TL1451AC, TL1451AY DUAL PULSE-WIDTH-MODULATION CONTROL CIRCUITS

15 DEVICES COVER COMMERCIAL, INDUSTRIAL, AND MILITARY TEMPERATURE RANGES AVAILABLE OPTIONS CERAMIC DIP (J) CERAMIC DIP (JG)

LM111, LM211, LM311, LM311Y DIFFERENTIAL COMPARATORS WITH STROBES

TLC227x, TLC227xA, TLC227xY Advanced LinCMOS RAIL-TO-RAIL OPERATIONAL AMPLIFIERS SLOS190 FEBRUARY 1997

TL05x, TL05xA, TL05xY ENHANCED-JFET LOW-OFFSET OPERATIONAL AMPLIFIERS

PRECISION VOLTAGE REGULATORS

TL497AC, TL497AI, TL497AY SWITCHING VOLTAGE REGULATORS

LM139, LM139A, LM239, LM239A, LM339, LM339A, LM339Y, LM2901 QUAD DIFFERENTIAL COMPARATORS

TLE2227, TLE2227Y, TLE2237, TLE2237Y EXCALIBUR LOW-NOISE HIGH-SPEED PRECISION DUAL OPERATIONAL AMPLIFIERS

ua733c, ua733m DIFFERENTIAL VIDEO AMPLIFIERS

TLC226x, TLC226xA Advanced LinCMOS RAIL-TO-RAIL OPERATIONAL AMPLIFIERS

AVAILABLE OPTIONS CERAMIC DIP (J) CERAMIC DIP (JG) TL071CPWLE 6 mv TL071ACD TL071ACP 3 mv TL071BCD TL071BCP TL072CP

LM124, LM124A, LM224, LM224A LM324, LM324A, LM2902 QUADRUPLE OPERATIONAL AMPLIFIERS

SN54HC04, SN74HC04 HEX INVERTERS

MC1489, MC1489A, SN55189, SN55189A, SN75189, SN75189A QUADRUPLE LINE RECEIVERS

TLV226x, TLV226xA Advanced LinCMOS RAIL-TO-RAIL OPERATIONAL AMPLIFIERS

THS MHz HIGH-SPEED AMPLIFIER

SN75158 DUAL DIFFERENTIAL LINE DRIVER

6N135, 6N136, HCPL4502 OPTOCOUPLERS/OPTOISOLATORS

TL598 PULSE-WIDTH-MODULATION CONTROL CIRCUITS

SN55451B, SN55452B, SN55453B, SN55454B SN75451B, SN75452B, SN75453B, SN75454B DUAL PERIPHERAL DRIVERS

24 DEVICES COVER COMMERCIAL, INDUSTRIAL, AND MILITARY TEMPERATURE RANGES. High Input Impedance...JFET-Input Stage Wide Common-Mode and Differential

SN75150 DUAL LINE DRIVER

TL594 PULSE-WIDTH-MODULATION CONTROL CIRCUITS

54ACT11020, 74ACT11020 DUAL 4-INPUT POSITIVE-NAND GATES

SN5407, SN5417, SN7407, SN7417 HEX BUFFERS/DRIVERS WITH OPEN-COLLECTOR HIGH-VOLTAGE OUTPUTS SDLS032A DECEMBER 1983 REVISED NOVEMBER 1997

ua9637ac DUAL DIFFERENTIAL LINE RECEIVER

SN54ACT00, SN74ACT00 QUADRUPLE 2-INPUT POSITIVE-NAND GATES

TLC271, TLC271A, TLC271B LinCMOS PROGRAMMABLE LOW-POWER OPERATIONAL AMPLIFIERS

SN54HC365, SN74HC365 HEX BUFFERS AND LINE DRIVERS WITH 3-STATE OUTPUTS

SN54HC573A, SN74HC573A OCTAL TRANSPARENT D-TYPE LATCHES WITH 3-STATE OUTPUTS SCLS147B DECEMBER 1982 REVISED MAY 1997

SN54HC373, SN74HC373 OCTAL TRANSPARENT D-TYPE LATCHES WITH 3-STATE OUTPUTS SCLS140B DECEMBER 1982 REVISED MAY 1997

SN75C1406 TRIPLE LOW-POWER DRIVERS/RECEIVERS

SN54HC175, SN74HC175 QUADRUPLE D-TYPE FLIP-FLOPS WITH CLEAR

PRODUCT PREVIEW SN54AHCT257, SN74AHCT257 QUADRUPLE 2-LINE TO 1-LINE DATA SELECTORS/MULTIPLEXERS WITH 3-STATE OUTPUTS. description

TPS1120, TPS1120Y DUAL P-CHANNEL ENHANCEMENT-MODE MOSFETS

SN54HC00, SN74HC00 QUADRUPLE 2-INPUT POSITIVE-NAND GATES

SN54HC373, SN74HC373 OCTAL TRANSPARENT D-TYPE LATCHES WITH 3-STATE OUTPUTS

SN54ALS873B, SN54AS873A, SN74ALS873B, SN74AS873A DUAL 4-BIT D-TYPE LATCHES WITH 3-STATE OUTPUTS SDAS036D APRIL 1982 REVISED AUGUST 1995

SN54HC245, SN74HC245 OCTAL BUS TRANSCEIVERS WITH 3-STATE OUTPUTS

SN54ALS00A, SN54AS00, SN74ALS00A, SN74AS00 QUADRUPLE 2-INPUT POSITIVE-NAND GATES

SN54HC377, SN74HC377 OCTAL D-TYPE FLIP-FLOPS WITH CLOCK ENABLE

MC3487 QUADRUPLE DIFFERENTIAL LINE DRIVER

AVAILABLE OPTIONS CERAMIC DIP (J) 6 mv ua747cd ua747cn. 5 mv ua747mj ua747mw ua747mfk

SN75C1406 TRIPLE LOW-POWER DRIVERS/RECEIVERS

MAX232, MAX232I DUAL EIA-232 DRIVER/RECEIVER

SN54HC132, SN74HC132 QUADRUPLE POSITIVE-NAND GATES WITH SCHMITT-TRIGGER INPUTS

SN5407, SN5417, SN7407, SN7417 HEX BUFFERS/DRIVERS WITH OPEN-COLLECTOR HIGH-VOLTAGE OUTPUTS

TLE2161, TLE2161A, TLE2161B EXCALIBUR JFET-INPUT HIGH-OUTPUT-DRIVE

SN54ALS688, SN74ALS688 8-BIT IDENTITY COMPARATORS

TL1431 PRECISION PROGRAMMABLE REFERENCE

TL7702B, TL7705B, TL7702BY, TL7705BY SUPPLY VOLTAGE SUPERVISORS

TL594 PULSE-WIDTH-MODULATION CONTROL CIRCUIT

TL494 PULSE-WIDTH-MODULATION CONTROL CIRCUITS

SN75150 DUAL LINE DRIVER

SN54ALS873B, SN54AS873A, SN74ALS873B, SN74AS873A DUAL 4-BIT D-TYPE LATCHES WITH 3-STATE OUTPUTS SDAS036D APRIL 1982 REVISED AUGUST 1995

ULN2804A DARLINGTON TRANSISTOR ARRAY

TL750M, TL751M SERIES LOW-DROPOUT VOLTAGE REGULATORS

GENERAL-PURPOSE OPERATIONAL AMPLIFIERS

SN75174 QUADRUPLE DIFFERENTIAL LINE DRIVER

SN54HC191, SN74HC191 4-BIT SYNCHRONOUS UP/DOWN BINARY COUNTERS

SN55115, SN75115 DUAL DIFFERENTIAL RECEIVERS

SN54HCT373, SN74HCT373 OCTAL TRANSPARENT D-TYPE LATCHES WITH 3-STATE OUTPUTS

SN QUADRUPLE HALF-H DRIVER

TL431C, TL431AC, TL431I, TL431AI, TL431M, TL431Y ADJUSTABLE PRECISION SHUNT REGULATORS

SN54ALS08, SN54AS08, SN74ALS08, SN74AS08 QUADRUPLE 2-INPUT POSITIVE-AND GATES

NE555, SA555, SE555 PRECISION TIMERS

NE556, SA556, SE556 DUAL PRECISION TIMERS

SN54221, SN54LS221, SN74221, SN74LS221 DUAL MONOSTABLE MULTIVIBRATORS WITH SCHMITT-TRIGGER INPUTS

MC3486 QUADRUPLE DIFFERENTIAL LINE RECEIVER WITH 3-STATE OUTPUTS

description V CC 2CLR 2D 2CLK 2PRE 2Q 2Q 1CLR 1D 1CLK 1PRE 1Q 1Q GND 2CLR 1CLR 1CLK NC 1PRE NC 1Q 2CLK 2PRE GND

SN54AHCT132, SN74AHCT132 QUADRUPLE POSITIVE-NAND GATES WITH SCHMITT-TRIGGER INPUTS

SN54ACT241, SN74ACT241 OCTAL BUFFERS/DRIVERS WITH 3-STATE OUTPUTS

SN54ALS244C, SN54AS244A, SN74ALS244C, SN74AS244A OCTAL BUFFERS AND LINE DRIVERS WITH 3-STATE OUTPUTS

ULN2001A THRU ULN2004A DARLINGTON TRANSISTOR ARRAYS

SN75C185 LOW-POWER MULTIPLE DRIVERS AND RECEIVERS

NE556, SA556, SE556, SE556C DUAL PRECISION TIMERS

Transcription:

Low Noise 1 Hz...15 n/ Hz 1 khz...1.5 n/ Hz 1 -pf Load Capability 2-mA Min Short-Circuit Output Current 27-/µs Min Slew Rate High Gain-Bandwidth Product...5.9 MHz Low IO... 5 µ Max at 25 C Single or Split Supply...4 to 44 Fast Settling Time 34 ns to.1% 4 ns to.1% Saturation Recovery...15 ns Large Output Swing CC +.1 to CC+ 1 SR Slew Rate /xs /µ s 5 4 3 2 SLEW RATE LOAD CAPACITANCE SR SR + 1 CC± = ±15 AD = 1.1.1 1 1 CL Load Capacitance nf n/ Hz Equivalent Input Noise oltage n 25 2 15 1 5 EQUIALENT INPUT NOISE OLTAGE FREQUENCY RS = 2 Ω 1 1 1 1 k 1 k f Frequency Hz description The TLE2141 and TLE2141A devices are high-performance, internally compensated operational amplifiers built using Texas Instruments complementary bipolar Excalibur process. The TLE2141A is a tighter offset voltage grade of the TLE2141. Both are pin-compatible upgrades to standard industry products. TA C to7 C 4 C to15 C 55 C to125 C IOmax AT 25 C SMALL OUTLINE (D) 5 µ TLE2141ACD 9 µ TLE2141CD 5 µ TLE2141AID 9 µ TLE2141ID AAILABLE OPTIONS PACKAGED DEICES CHIP CARRIER (FK) CERAMIC DIP (JG) PLASTIC DIP (P) TLE2141ACP TLE2141CP TLE2141AIP TLE2141IP 5 µ TLE2141AMD TLE2141AMFK TLE2141AMJG TLE2141AMP 9 µ TLE2141MD TLE2141MFK TLE2141MJB TLE2141MP The D packages are available taped and reeled. Add R suffix to device type (e.g., TLE2141ACDR). CHIP FORM (Y) TLE2141Y 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. Copyright 1994, Texas Instruments Incorporated On products compliant to MIL-STD-883, Class B, all parameters are tested unless otherwise noted. On all other products, production processing does not necessarily include testing of all parameters. POST OFFICE BOX 65533 DALLAS, TEXAS 75265 5 1

description (continued) The design incorporates an input stage that simultaneously achieves low audio-band noise of 1.5 n/ Hz with a 1-Hz 1/f corner and symmetrical 4-/µs slew rate typically with loads up to 8 pf. The resulting low distortion and high power bandwidth are important in high-fidelity audio applications. A fast settling time of 34 ns to.1% of a 1- step with a 2-kΩ/1-pF load is useful in fast actuator/positioning drivers. Under similar test conditions, settling time to.1% is 4 ns. The devices are stable with capacitive loads up to 1 nf, although the 6-MHz bandwidth decreases to 1.8 MHz at this high loading level. As such, the TLE2141 and TLE2141A are useful for low-droop sample-and-holds and direct buffering of long cables, including 4-mA to 2-mA current loops. The special design also exhibits an improved insensitivity to inherent integrated circuit component mismatches as is evidenced by a 5-µ maximum offset voltage and 1.7-µ/ C typical drift. Minimum common-mode rejection ratio and supply-voltage rejection ratio are 85 db and 9 db, respectively. Device performance is relatively independent of supply voltage over the ± 2- to ± 22- range. Inputs can operate between CC.3 to CC+ 1.8 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 CC.1 to CC+ 1 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 CC± can be maintained without damage to the device. Open-loop propagation delay with TTL supply levels is typically 2 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 TLE2141 and TLE2141A 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 C to 7 C, I-suffix devices from 4 C to 15 C, and M-suffix devices over the full military temperature range of 55 C to 125 C. D, JG, OR P PACKAGE (TOP IEW) FK PACKAGE (TOP IEW) OFFSET N1 IN IN+ CC 1 2 3 4 8 7 6 5 NC CC + OUT OFFSET N2 NC OFFSET N1 NC NC NC NC IN NC IN+ NC 3 4 2 1 2 19 18 5 6 7 17 16 15 8 14 9 1 11 12 13 NC CC + NC OUT NC NC No internal connection NC NC CC OFFSET N2 NC 5 2 POST OFFICE BOX 65533 DALLAS, TEXAS 75265

symbol OFFSET N1 IN + IN OFFSET N2 + OUT TLE2141Y chip information This chip, when properly assembled, displays characteristics similar to the TLE2141. 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 (7) (6) (5) OFFSET N1 IN + IN OFFSET N2 (1) (3) (2) (5) CC+ (7) + (4) CC (6) OUT 64 (1) CHIP THICKNESS: 15 TYPICAL BONDING PADS: 4 4 MINIMUM (2) (3) (4) TJmax = 15 C TOLERANCES ARE ±1%. ALL DIMENSIONS ARE IN MILS. 65 POST OFFICE BOX 65533 DALLAS, TEXAS 75265 5 3

PRECISION OPERATIONAL AMPLIFICATIONS equivalent schematic R1 R4 R7 Q3 Q5 Q8 Q1 Q13 D1 D2 R3 R2 R6 R8 IN Q6 Q11 Q1 Q4 Q14 Q15 IN + Q9 Q2 C1 OFFSET N1 OFFSET N2 Q7 Q12 R5 COMPONENT COUNT (total device) Transistors 36 Epi-FET 1 Diodes 8 Resistors 24 Capacitors 4 R9 Q16 R1 C2 Q17 R11 CC + Q19 Q18 CC Q2 R12 R14 R18 R19 Q22 Q3 Q26 Q23 Q27 D8 D3 D4 R15 R17 R13 R16 C3 Q25 Q28 Q31 C4 D6 Q24 Q32 D7 Q21 Q29 Q33 D5 R2 R21 Q34 R23 Q36 Q35 R22 R24 Q37 OUT 5 4 POST OFFICE BOX 65533 DALLAS, TEXAS 75265

absolute maximum ratings over operating free-air temperature range (unless otherwise noted) Supply voltage, CC+ (see Note 1).......................................................... 22 Supply voltage, CC.................................................................... 22 Differential input voltage, ID (see Note 2).................................................. ± 44 Input voltage range, I (any input)............................................ CC+ to CC.3 Input current, I I (each input).............................................................. ±1 ma Output current, I O...................................................................... ±8 ma Total current into CC+................................................................... 8 ma Total current out of CC................................................................. 8 ma Duration of short-circuit current at (or below) 25 C (see Note 3).............................. unlimited Continuous total dissipation........................................... See Dissipation Rating Table Operating free-air temperature range, T A : C suffix....................................... C to 7 C I suffix.................................... 4 C to 15 C M suffix................................... 55 C to 125 C Storage temperature range....................................................... 65 C to 15 C Case temperature for 6 seconds: FK package.............................................. 26 C Lead temperature 1,6 mm (1/16 inch) from case for 1 seconds: D or P package................. 26 C Lead temperature 1,6 mm (1/16 inch) from case for 6 seconds: JG package.................... 3 C 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 CC+ and CC. 2. Differential voltages are at IN+ with respect to IN. Excessive current flows if input is brought below CC.3. 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. PACKAGE DISSIPATION RATING TABLE TA A 25 C DERATING FACTOR TA A = 7 C TA A = 15 C TA A = 125 C POWER RATING ABOE POWER RATING POWER RATING POWER RATING D 725 mw 5.8 mw/ C 464 mw 261 mw 145 mw FK 1375 mw 11. mw/ C 88 mw 495 mw 275 mw JG 15 mw 8.4 mw/ C 672 mw 378 mw 21 mw P 1 mw 8. mw/ C 64 mw 36 mw 2 mw recommended operating conditions C SUFFIX I SUFFIX M SUFFIX MIN MAX MIN MAX MIN MAX Supply voltage, CC± ±2 ±22 ±2 ±22 ±2 ±22 Common-mode input voltage, IC CC = 5 2.9 2.7 2.7 15 12.9 15 12.7 15 12.7 Operating free-air temperature, TA 7 4 15 55 125 C UNIT POST OFFICE BOX 65533 DALLAS, TEXAS 75265 5 5

electrical characteristics at specified free-air temperature, CC = 5 (unless otherwise noted) IO αio IIO IIB ICR TLE2141C TLE2141AC PARAMETER TEST CONDITIONS TA MIN TYP MAX MIN TYP MAX Input offset voltage Temperature coefficient of input offset voltage Input offset current Input bias current Common-mode mode input voltage range 25 C 225 14 2 1 Full range 17 13 UNIT Full range 17 1.7 17 1.7 µ/ C O = 2.5, RS = 5 Ω, IC = 2.5 25 C 8 1 8 1 na Full range 15 15 RS =5Ω Ω IOH = 15 µa OH High-level output voltage IOH = 15mA 1.5 IOH = 15 ma IOL = 15 µa OL Low-level output voltage IOL =15mA 1.5 AD IOL =15mA 25 C.8 2.8 2 Full range 2.1 2.1 25 C Full range.3.3 3 3.2 3 3.2 to to 2.9 2.9 25 C 3.9 4.1 3.9 4.1 Full range 3.8 3.8 25 C 3.8 4 3.8 4 Full range 3.7 3.7 25 C 3.2 3.7 3.2 3.7 Full range 3.2 3.2 25 C 75 125 75 125 Full range 15 15 25 C 15 225 15 225 Full range 25 25 25 C 1.2 1.6 1.2 1.6 Full range 1.7 1.7 Large-signal differential CC = ±2.5, RL = 2 kω, 25 C 5 22 5 22 voltage amplification O = 1 to 1.5 Full range 25 25 ri Input resistance 25 C 7 7 MΩ ci Input capacitance 25 C 2.5 2.5 pf zo Open-loop output impedance f = 1 MHz 25 C 3 3 Ω Common-mode mode 25 C 85 118 85 118 CMRR =ICRmin =5Ω rejection ratio IC ICRmin, RS Ω db Full range 8 8 Supply-voltage = 25 C 9 16 9 16 ksr rejection CC ± ±2.5 to ±15, ratio ( CC ± / IO) RS = 5 Ω Full range 85 85 ICC Supply current Full range is C to 7 C. O = 2.5, No load, 25 C 3.4 4.4 3.4 4.4 IC = 2.5 Full range 4.6 4.6 µ µa m /m db ma 5 6 POST OFFICE BOX 65533 DALLAS, TEXAS 75265

operating characteristics, CC = 5, T A = 25 C PARAMETER TEST CONDITIONS TLE2141C TLE2141AC MIN TYP MAX MIN TYP MAX SR + Positive slew rate AD = 1, RL = 2 kω, 45 45 SR Negative slew rate CL = 5 pf 42 42 ts n N(PP) In Settling time Equivalent input noise voltage AD = 1, To.1%.16.16 2.5- step To.1%.22.22 RS = 2 Ω, f = 1 Hz 15 15 RS = 2 Ω, f = 1 khz 1.5 1.5 Peak-to-peak equivalent input f =.1 Hz to 1 Hz.48.48 noise voltage f =.1 Hz to 1 Hz.51.51 Equivalent input noise current THD+N Total harmonic distortion plus O O = 1 to 3, RL = 2 kω, noise AD = 2, f = 1 khz f = 1 Hz 1.92 1.92 f = 1 khz.5.5.52% 52%.52% 52% UNIT /µs µs n/ Hz µ pa/ Hz B1 Unity-gain bandwidth RL = 2 kω, CL = 1 pf 5.9 5.9 MHz BOM Gain-bandwidth product RL = 2 kω, f = 1 khz CL = 1 pf, Maximum output-swing O(PP) = 2, RL = 2 kω, bandwidth AD = 1, CL = 1 pf 58 5.8 58 5.8 MHz 66 66 khz φm Phase margin at unity gain RL = 2 kω, CL = 1 pf 57 57 RL and CL terminated to 2.5. POST OFFICE BOX 65533 DALLAS, TEXAS 75265 5 7

electrical characteristics at specified free-air temperature, CC± = ±15 (unless otherwise noted) IO αio IIO IIB ICR OM+ OM AD TLE2141C TLE2141AC PARAMETER TEST CONDITIONS TA MIN TYP MAX MIN TYP MAX Input offset voltage Temperature coefficient of input offset voltage Input offset current Input bias current Common-mode mode input voltage range Maximum positive peak output voltage swing Maximum negative peak output voltage swing Large-signal differential voltage amplification 25 C 2 9 175 5 Full range 13 8 UNIT Full range 17 1.7 17 1.7 µ/ C IC =, RS = 5 Ω, O = 25 C 7 1 7 1 na Full range 15 15 RS =5Ω Ω IO = 15 µa IO = 15mA 1.5 IO = 15 ma IO = 15 µa IO =15mA 1.5 IO =15mA O = ±1 25 C.7 1.5.7 1.5 Full range 1.6 1.6 25 C Full range 15 15.3 15 15.3 13 13.2 13 13.2 15 15.3 15 15.3 12.9 13.1 12.9 13.1 25 C 13.8 14.1 13.8 14.1 Full range 13.7 13.7 25 C 13.7 14 13.7 14 Full range 13.6 13.6 25 C 13.1 13.7 13.1 13.7 Full range 13 13 25 C 14.7 14.9 14.7 14.9 Full range 14.6 14.6 25 C 14.5 14.8 14.5 14.8 Full range 14.4 14.4 25 C 13.4 13.8 13.4 13.8 Full range 13.3 13.3 25 C 1 45 1 45 Full range 75 75 ri Input resistance RL = 2 kω 25 C 65 65 MΩ ci Input capacitance 25 C 2.5 2.5 pf zo Open-loop output impedance Common-mode mode CMRR =ICRmin =5Ω rejection ratio IC ICRmin, RS Ω ksr IOS Supply-voltage rejection ratio ( CC ± / IO) Short-circuit output current f = 1 MHz 25 C 3 3 Ω CC ± = ±2.5 to ±15, RS = 5 Ω O = ID = 1 ID = 1 ICC Supply current O =, No load Full range is C to 7 C. 25 C 85 18 85 18 Full range 8 8 25 C 9 16 9 16 Full range 85 85 25 C 25 5 25 5 2 31 2 31 25 C 3.5 4.5 3.5 4.5 Full range 4.7 4.7 µ µa /m db db ma ma 5 8 POST OFFICE BOX 65533 DALLAS, TEXAS 75265

operating characteristics, CC± = ±15, T A = 25 C PARAMETER TEST CONDITIONS TLE2141C TLE2141AC MIN TYP MAX MIN TYP MAX SR + Positive slew rate AD = 1, RL = 2 kω, 27 45 27 45 SR Negative slew rate CL = 5 pf 27 42 27 42 ts n N(PP) In Settling time Equivalent input noise voltage AD = 1, To.1%.34.34 1- step To.1%.4.4 RS = 2 Ω, f = 1 Hz 15 15 RS = 2 Ω, f = 1 khz 1.5 1.5 Peak-to-peak equivalent input f =.1 Hz to 1 Hz.48.48 noise voltage f =.1 Hz to 1 Hz.51.51 Equivalent input noise current THD+N = = Total harmonic distortion plus O(PP) 2, RL 2 kω, noise AD = 1, f = 1 khz f = 1 Hz 1.89 1.89 f = 1 khz.47.47.1% 1%.1% 1% B1 Unity-gain bandwidth RL = 2 kω, CL = 1 pf 6 6 MHz BOM Gain-bandwidth product RL = 2 kω, CL = 1 pf, f = 1 khz Maximum output-swing O(PP) = 2, RL = 2 kω, bandwidth AD = 1, CL = 1 pf UNIT /µs µs n/ Hz µ pa/ Hz 59 5.9 59 5.9 MHz 668 668 khz φm Phase margin at unity gain RL = 2 kω, CL = 1 pf 58 58 POST OFFICE BOX 65533 DALLAS, TEXAS 75265 5 9

electrical characteristics at specified free-air temperature, CC = 5 (unless otherwise noted) IO αio IIO IIB ICR OH OL AD TLE2141I TLE2141AI PARAMETER TEST CONDITIONS TA MIN TYP MAX MIN TYP MAX Input offset voltage Temperature coefficient of input offset voltage Input offset current Input bias current Common-mode mode input voltage range High-level output voltage Low-level output voltage 25 C 225 14 2 1 Full range 19 15 UNIT Full range 17 1.7 17 1.7 µ/ C O = 2.5, RS = 5 Ω, IC = 2.5 25 C 8 1 8 1 na Full range 2 2 RS =5Ω Ω 25 C.8 2.8 2 Full range 2.2 2.2 25 C Full range.3.3 3 3.2 3 3.2.3.3 2.7 2.9 2.7 2.9 IOH = 15 µa 3.9 4.1 3.9 4.1 IOH = 1.5 ma 25 C 3.8 4 3.8 4 IOH = 15 ma 3.2 3.7 3.2 3.7 IOH = 1 µa 3.8 3.8 IOH = 1 ma Full range 3.7 3.7 IOH = 1 ma 3.3 3.3 IOL = 15 µa 75 125 75 125 IOL = 1.5 µa 25 C 15 225 15 225 IOL = 15 ma 1.2 1.6 1.2 1.6 IOL = 1 µa 175 175 IOL = 1 ma Full range 225 225 IOL = 1 ma 1.4 1.4 Large-signal differential CC = ±2.5, RL = 2 kω, 25 C 5 22 5 22 voltage amplification O = 1 to 1.5 Full range 1 1 ri Input resistance 25 C 7 7 MΩ ci Input capacitance 25 C 2.5 2.5 pf zo Open-loop output impedance Common-mode mode CMRR =ICRmin =5Ω rejection ratio IC ICRmin, RS Ω f = 1 MHz 25 C 3 3 Ω 25 C 85 118 85 118 Full range 8 8 Supply-voltage = 25 C 9 16 9 16 ksr rejection CC ± ±2.5 to ±15, ratio ( CC ± / IO) RS = 5 Ω Full range 85 85 ICC Supply current Full range is 4 C to 15 C. O = 2.5, No load, 25 C 3.4 4.4 3.4 4.4 IC = 2.5 Full range 4.6 4.6 µ µa m m /m db db ma 5 1 POST OFFICE BOX 65533 DALLAS, TEXAS 75265

operating characteristics, CC = 5, T A = 25 C PARAMETER TEST CONDITIONS TLE2141I TLE2141AI MIN TYP MAX MIN TYP MAX SR + Positive slew rate 45 45 AD = 1, RL = 2 kω, SR Negative slew rate CL = 5 pf 42 42 ts n N(PP) In Settling time Equivalent input noise voltage AD = 1, To.1%.16.16 2.5- step To.1%.22.22 RS = 2 Ω, f = 1 Hz 15 15 RS = 2 Ω, f = 1 khz 1.5 1.5 Peak-to-peak equivalent input f =.1 Hz to 1 Hz.48.48 noise voltage f =.1 Hz to 1 Hz.51.51 Equivalent input noise current f = 1 Hz 1.92 1.92 f = 1 khz.5.5 UNIT /µs µs n/ Hz µ pa/ Hz THD+N Total harmonic distortion plus O O = 1 to 3, RL = 2 kω,.52% 52%.52% 52% noise AD = 2, f = 1 khz B1 Unity-gain bandwidth RL = 2 kω, CL = 1 pf 5.9 5.9 MHz BOM Gain-bandwidth product Maximum output-swing bandwidth RL = 2 kω, f = 1 khz O(PP) = 2, AD = 1, CL = 1 pf, RL = 2 kω, CL = 1 pf 58 5.8 58 5.8 MHz 66 66 khz φm Phase margin at unity gain RL = 2 kω, CL = 1 pf 57 57 RL and CL terminated to 2.5. POST OFFICE BOX 65533 DALLAS, TEXAS 75265 5 11

electrical characteristics at specified free-air temperature, CC± = ±15 (unless otherwise noted) IO αio IIO IIB ICR OM+ OM AD TLE2141I TLE2141AI PARAMETER TEST CONDITIONS TA MIN TYP MAX MIN TYP MAX Input offset voltage Temperature coefficient of input offset voltage Input offset current Input bias current Common-mode mode input voltage range 25 C 2 9 175 5 Full range 15 1 UNIT Full range 17 1.7 17 1.7 µ/ C IC =, RS = 5 Ω, O = 25 C 7 1 7 1 na Full range 2 2 RS =5Ω Ω 25 C.7 1.5.7 1.5 Full range 1.7 1.7 25 C Full range 15 15.3 15 15.3 13 13.2 13 13.2 15 15.3 15 15.3 12.7 12.9 12.7 12.9 IO = 15 µa 13.8 14.1 13.8 14.1 IO = 1.5 A 25 C 13.7 14 13.7 14 Maximum positive peak IO = 15 ma 13.1 13.7 13.1 13.7 output voltage swing IO = 1 µa 13.7 13.7 IO = 1 ma Full range 13.6 13.6 IO = 1 ma 13.1 13.1 IO = 15 µa 14.7 14.9 14.7 14.9 IO = 1.5 ma 25 C 14.5 14.8 14.5 14.8 Maximum negative peak IO = 15 ma 13.4 13.8 13.4 13.8 output voltage swing IO = 1 µa 14.6 14.6 Large-signal differential voltage amplification IO = 1 ma Full range 14.5 14.5 IO = 1 ma 13.4 13.4 O = ±1, RL =2kΩ 25 C 1 45 1 45 Full range 4 4 ri Input resistance 25 C 65 65 MΩ ci Input capacitance 25 C 2.5 2.5 pf zo Open-loop output impedance Common-mode mode CMRR =ICRmin =5Ω rejection ratio IC ICRmin, RS Ω f = 1 MHz 25 C 3 3 Ω 25 C 85 18 85 18 Full range 8 8 Supply-voltage = 25 C 9 16 9 16 ksr rejection CC ± ±2.5 to ±15, ratio ( CC ± / IO) RS = 5 Ω Full range 85 85 IOS Short-circuit output current O = ID = 1 ID = 1 ICC Supply current O =, No load Full range is 4 C to 15 C. 25 C 25 5 25 5 2 31 2 31 25 C 3.5 4.5 3.5 4.5 Full range 4.7 4.7 µ µa /m db db ma ma 5 12 POST OFFICE BOX 65533 DALLAS, TEXAS 75265

operating characteristics, CC± = ±15, T A = 25 C PARAMETER TEST CONDITIONS TLE2141I TLE2141AI MIN TYP MAX MIN TYP MAX SR + Positive slew rate AD = 1, RL = 2 kω, 27 45 27 45 SR Negative slew rate CL = 5 pf 27 42 27 42 ts n N(PP) In Settling time Equivalent input noise voltage AD = 1, To.1%.34.34 1- step To.1%.4.4 RS = 2 Ω, f = 1 Hz 15 15 RS = 2 Ω, f = 1 khz 1.5 1.5 Peak-to-peak equivalent input f =.1 Hz to 1 Hz.48.48 noise voltage f =.1 Hz to 1 Hz.51.51 Equivalent input noise current THD+N = = Total harmonic distortion plus O(PP) 2, RL 2 kω, noise AD = 1, f = 1 khz f = 1 Hz 1.89 1.89 f = 1 khz.47.47.1% 1%.1% 1% UNIT /µs µs n/ Hz µ pa/ Hz B1 Unity-gain bandwidth RL = 2 kω, CL = 1 pf 6 6 MHz BOM Gain-bandwidth product RL = 2 kω, CL = 1 pf, f = 1 khz Maximum output-swing O(PP) = 2, RL = 2 kω, bandwidth AD = 1, CL = 1 pf 59 5.9 59 5.9 MHz 668 668 khz φm Phase margin at unity gain RL = 2 kω, CL = 1 pf 58 58 POST OFFICE BOX 65533 DALLAS, TEXAS 75265 5 13

electrical characteristics at specified free-air temperature, CC = 5 (unless otherwise noted) IO αio IIO IIB ICR OH OL AD TLE2141M TLE2141AM PARAMETER TEST CONDITIONS TA MIN TYP MAX MIN TYP MAX Input offset voltage Temperature coefficient of input offset voltage Input offset current Input bias current Common-mode mode input voltage range 25 C 225 14 2 1 Full range 21 17 UNIT Full range 17 1.7 17 1.7 µ/ C O = 2.5, RS = 5 Ω, IC = 2.5 25 C 8 1 8 1 na Full range 25 25 RS =5Ω Ω 25 C.8 2.8 2 Full range 2.3 2.3 25 C Full range.3.3 3 3.2 3 3.2.3.3 2.7 2.9 2.7 2.9 IOH = 15 µa 3.9 4.1 3.9 4.1 IOH = 1.5 ma 25 C 3.8 4 3.8 4 High-level output IOH = 15 ma 3.2 3.7 3.2 3.7 voltage IOH = 1 µa 3.75 3.75 IOH = 1 ma Full range 3.65 3.65 IOH = 1 ma 3.25 3.25 IOL = 15 µa 75 125 75 125 IOL = 1.5 µa 25 C 15 225 15 225 Low-level output IOL = 15 ma 1.2 1.4 1.2 1.4 voltage IOL = 1 µa 2 2 m IOL = 1 ma Full range 25 225 IOL = 1 ma 1.25 1.25 Large-signal differential IC = ±2.5, RL = 2 kω, 25 C 5 22 5 22 voltage amplification O = 1 to 1.5 Full range 5 5 ri Input resistance 25 C 7 7 MΩ ci Input capacitance 25 C 2.5 2.5 pf zo Open-loop output impedance Common-mode mode CMRR =ICRmin =5Ω rejection ratio IC ICRmin, RS Ω f = 1 MHz 25 C 3 3 Ω 25 C 85 118 85 118 Full range 8 8 Supply-voltage = 25 C 9 16 9 16 ksr rejection CC ± ±2.5 to ±15, ratio ( CC ± / IO) RS = 5 Ω Full range 85 85 ICC Supply current Full range is 55 C to 125 C. O = 2.5, No load, 25 C 3.4 4.4 3.4 4.4 IC = 2.5 Full range 4.6 4.6 µ µa m /m db db ma 5 14 POST OFFICE BOX 65533 DALLAS, TEXAS 75265

operating characteristics, CC = 5, T A = 25 C PARAMETER TEST CONDITIONS TLE2141M TLE2141AM MIN TYP MAX MIN TYP MAX SR + Positive slew rate 45 45 AD = 1, RL = 2 kω, SR Negative slew rate CL = 5 pf 42 42 ts n N(PP) In THD + N Settling time Equivalent input noise voltage AD = 1, To.1%.16.16 2.5- step To.1%.22.22 RS = 2 Ω, f = 1 Hz 15 15 RS = 2 Ω, f = 1 khz 1.5 1.5 Peak-to-peak equivalent input f =.1 Hz to 1 Hz.48.48 noise voltage f =.1 Hz to 1 Hz.51.51 Equivalent input noise current Total harmonic distortion plus noise f = 1 Hz 1.92 1.92 f = 1 khz.5.5 O = 1 to 3, AD = 2, RL = 2 kω, f = 1 khz.52%.52% B1 Unity-gain bandwidth RL = 2 kω, CL = 1 pf 5.9 5.9 MHz BOM Gain-bandwidth product Maximum output-swing bandwidth RL = 2 kω, f = 1 khz O(PP) = 2, AD = 1 CL = 1 pf, RL = 2 kω, UNIT /µs µs n/ Hz µ pa/ Hz 5.8 5.8 MHz 66 66 khz φm Phase margin at unity gain RL = 2 kω, CL = 1 pf 57 57 RL and CL terminated to 2.5. POST OFFICE BOX 65533 DALLAS, TEXAS 75265 5 15

electrical characteristics at specified free-air temperature, CC± = ±15 (unless otherwise noted) IO αio IIO IIB ICR OM+ OM AD TLE2141M TLE2141AM PARAMETER TEST CONDITIONS TA MIN TYP MAX MIN TYP MAX Input offset voltage Temperature coefficient of input offset voltage Input offset current Input bias current Common-mode mode input voltage range IC =, RS =5 5 Ω RS =5Ω Ω 25 C 2 9 175 5 Full range 17 12 UNIT µ Full range 17 1.7 17 1.7 µ/ C 25 C 7 1 7 1 Full range 25 25 25 C.7 1.5.7 1.5 Full range 1.8 1.8 25 C Full range 15 15.3 15 15.3 13 13.2 13 13.2 15 15.3 15 15.3 12.7 12.9 12.7 12.9 IO = 15 µa 13.8 14.1 13.8 14.1 IO = 1.5 A 25 C 13.7 14 13.7 14 Maximum positive peak IO = 15 ma 13.1 13.7 13.1 13.7 output voltage swing IO = 1 µa 13.7 13.7 Maximum negative peak output voltage swing Large-signal differential voltage amplification IO = 1 ma Full range 13.6 13.6 IO = 1 ma 13.1 13.1 IO = 15 µa 14.7 14.9 14.7 14.9 IO = 1.5 ma 25 C 14.5 14.8 14.5 14.8 IO = 15 ma 13.4 13.8 13.4 13.8 IO = 1 µa 14.6 14.6 IO = 1 ma Full range 14.5 14.5 IO = 1 ma 13.4 13.4 O = ±1, RL =2kΩ 25 C 1 45 1 45 Full range 2 2 ri Input resistance 25 C 65 65 MΩ ci Input capacitance 25 C 2.5 2.5 pf zo Open-loop output impedance Common-mode mode CMRR =ICRmin =5Ω rejection ratio IC ICRmin, RS Ω ksr IOS ICC Supply-voltage rejection ratio ( CC ± / IO) Short-circuit output current Supply current Full range is 55 C to 125 C. f = 1 MHz 25 C 3 3 Ω CC ± = ±2.5 to ±15, RS = 5 Ω O = ID = 1 ID = 1 25 C 85 18 85 18 Full range 8 8 25 C 9 16 9 16 Full range 85 85 25 C 25 5 25 5 2 31 2 31 O =, No load, 25 C 3.5 4.5 3.5 4.5 IC = 2.5 Full range 4.7 4.7 na µa /m db db ma ma 5 16 POST OFFICE BOX 65533 DALLAS, TEXAS 75265

operating characteristics, CC± = ±15, T A = 25 C PARAMETER TEST CONDITIONS TLE2141M TLE2141AM MIN TYP MAX MIN TYP MAX SR + Positive slew rate AD = 1, RL = 2 kω, 27 45 27 45 SR Negative slew rate CL = 1 pf 27 42 27 42 ts n N(PP) In Settling time Equivalent input noise voltage AD = 1, To.1%.34.34 1- step To.1%.4.4 RS = 2 Ω, f = 1 Hz 15 15 RS = 2 Ω, f = 1 khz 1.5 1.5 Peak-to-peak equivalent input f =.1 Hz to 1 Hz.48.48 noise voltage f =.1 Hz to 1 Hz.51.51 Equivalent input noise current THD+N = = Total harmonic distortion plus O(PP) 2, RL 2 kω, noise AD = 1, f = 1 khz f = 1 Hz 1.89 1.89 f = 1 khz.47.47.1% 1%.1% 1% UNIT /µs µs n/ Hz µ pa/ Hz B1 Unity-gain bandwidth RL = 2 kω, CL = 1 pf 6 6 MHz BOM Gain-bandwidth product RL = 2 kω, CL = 1 pf, f = 1 khz Maximum output-swing O(PP) = 2, RL = 2 kω, bandwidth AD = 1, CL = 1 pf 59 5.9 59 5.9 MHz 668 668 khz φm Phase margin at unity gain RL = 2 kω, CL = 1 pf 58 58 POST OFFICE BOX 65533 DALLAS, TEXAS 75265 5 17

electrical characteristics at specified free-air temperature, CC± = ±15, T A = 25 C (unless otherwise noted) IO IIO IIB Input offset voltage Input offset current Input bias current PARAMETER ICR Common-mode input voltage range RS S = 5 Ω TEST CONDITIONS IC =, RS = 5 Ω, O = TLE2141Y MIN TYP MAX 15 15.3 13 13.2 IO = 15 µa 13.8 14.1 UNIT 2 1 µ 7 1 na.7 1.5 µa OM+ Maximum positive peak output voltage swing IO = 1.5 A 13.7 14 IO = 15 ma 13.3 13.7 IO = 15 µa 14.7 14.9 OM Maximum negative peak output voltage swing IO = 1.5 ma 14.5 14.8 IO = 15 ma 13.4 13.8 AD Large-signal differential voltage amplification O = ±1, RL = 2 kω 1 45 /m ri Input resistance 65 MΩ ci Input capacitance 2.5 pf zo Open-loop output impedance f = 1 MHz 3 Ω CMRR Common-mode rejection ratio IC = ICRmin, RS = 5 Ω 8 18 db ksr Supply-voltage rejection ratio ( CC ±/ IO) IOS Short-circuit output current O = CC ± = ±2.5 to ±15, RS = 5 Ω ID = 1 25 5 ID = 1 2 31 85 16 db ICC Supply current O =, No load 3.5 4.5 ma ma 5 18 POST OFFICE BOX 65533 DALLAS, TEXAS 75265

TYPICAL CHARACTERISTICS Table of Graphs TLE2141, TLE2141A, TLE2141Y FIGURE IO Input offset voltage Distribution 1 IIO Input offset current Free-air temperature 2 IIB OM+ OM Input bias current Maximum positive peak output voltage Maximum negative peak output voltage Free-air temperature 3 Common-mode input voltage 4 Supply voltage 5 Free-air temperature 6 Output current 7 Settling time 9 Supply voltage 5 Free-air temperature 6 Output current 8 Settling time 9 O(PP) Maximum peak-to-peak output voltage Frequency 1 OH High-level output voltage Output current 11 OL Low-level output voltage Output current 12 AD Large-signal differential voltage amplification Free-air temperature 13 Frequency 14 zo Closed loop output impedance Frequency 15 IOS Short-circuit output current Free-air temperature 16 CMRR ksr ICC Common-mode rejection ratio Supply-voltage rejection ratio Supply current Frequency 17 Free-air temperature 18 Frequency 19 Free-air temperature 2 Free-air temperature 21 Supply voltage 22 N Noise voltage Frequency 23 N Noise voltage Over a 1-second period 24 In Noise current Frequency 25 THD + N Total harmonic distortion plus noise Frequency 26 SR Slew rate Free-air temperature 27 Load capacitance 28 Noninverting large signal Time 29 Pulse response Inverting large signal Time 3 Small signal Time 31 B1 Unity-gain bandwidth Load capacitance 32 Gain margin Load capacitance 33 φm Phase margin Load capacitance 34 Phase shift Frequency 14 POST OFFICE BOX 65533 DALLAS, TEXAS 75265 5 19

TYPICAL CHARACTERISTICS TLE2141 DISTRIBUTION OF INPUT OFFSET OLTAGE INPUT OFFSET CURRENT FREE-AIR TEMPERATURE Percentage of Units % 24 2 16 12 8 4 236 Units Tested From 1 Wafer Lot P Package IIO IIO Input Offset Current na 2 18 16 14 12 1 8 6 4 2 O = IC = CC ± = ±2.5 8 4 4 8 IO Input Offset oltage µ 75 5 25 25 5 75 1 125 TA Free-Air Temperature C 15 Figure 1 Figure 2 IIB Input Bias Current na 1 9 8 7 6 O = IC = INPUT BIAS CURRENT FREE-AIR TEMPERATURE CC ± = ±2.5 IIB Input Bias Current µa ua.2.4.6.8 1 1.2 INPUT BIAS CURRENT COMMON-MODE INPUT OLTAGE CC ± = ±2.5 5 75 5 25 25 5 75 1 125 15 TA Free-Air Temperature C 1.4 3 2.5 2 1.5 1.5.5 1 IC Common-Mode Input oltage 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. 5 2 POST OFFICE BOX 65533 DALLAS, TEXAS 75265

TYPICAL CHARACTERISTICS TLE2141, TLE2141A, TLE2141Y Maximum Peak Output oltage OM 24 18 12 6 6 12 18 MAXIMUM PEAK OUTPUT OLTAGE SUPPLY OLTAGE RL = 2 kω OM+ OM OM Maximum Peak Output oltage 15 14.6 14.2 13.8 13.8 14.2 14.6 MAXIMUM PEAK OUTPUT OLTAGE FREE-AIR TEMPERATURE RL = 2 kω RL = OM+ RL = RL = 2 kω OM 24 3 6 9 12 15 18 21 24 CC ± Supply oltage 15 75 5 25 25 5 75 1 125 TA Free-Air Temperature C 15 Figure 5 Figure 6 Maximum Positive Peak Output oltage OM + 14.6 14.4 14.2 14 13.8 13.6.1 MAXIMUM POSITIE PEAK OUTPUT OLTAGE OUTPUT CURRENT.4 1 4 IO Output Current ma 1 4 1 Maximum Negative Peak Output oltage OM 13.4 13.6 13.8 14 14.2 14.4 14.6 14.8 15.1.4 1 MAXIMUM NEGATIE PEAK OUTPUT OLTAGE OUTPUT CURRENT 4 1 4 1 IO Output Current ma Figure 7 Figure 8 Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices. POST OFFICE BOX 65533 DALLAS, TEXAS 75265 5 21

TYPICAL CHARACTERISTICS OM Maximum Peak Output oltage 12.5 1 7.5 5 2.5 2.5 5 7.5 1 MAXIMUM PEAK OUTPUT OLTAGE SETTLING TIME AD = 1 Rising Falling.1%.1%.1% 12.5 1 2 3 4 5 ts Settling Time ns.1% Maximum Peak-to-Peak Output oltage O(PP) 3 25 2 15 1 5 MAXIMUM PEAK-TO-PEAK OUTPUT OLTAGE FREQUENCY 1 k 4 k 1 M f Frequency Hz RL = 2 kω 4 M 1 M Figure 9 Figure 1 HIGH-LEEL OUTPUT OLTAGE OUTPUT CURRENT LOW-LEEL OUTPUT OLTAGE OUTPUT CURRENT 4.6 CC = 5 14 CC = 5 High-Level Output oltage OH 4.4 4.2 4 3.8 3.6 OL OL Low-Level Output oltage m 12 1 8 6 4 2 3.4.1 1 1 IO Output Current ma 1.1 1 1 IO Output Current ma 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. 5 22 POST OFFICE BOX 65533 DALLAS, TEXAS 75265

A AD Large-Signal Differential oltage Amplification db 14 12 1 LARGE-SIGNAL DIFFERENTIAL OLTAGE AMPLIFICATION FREE-AIR TEMPERATURE RL = 1 kω RL = 2 kω 8 75 5 25 25 5 75 1 125 15 TA Free-Air Temperature C TYPICAL CHARACTERISTICS O = ±1 A AD Large-Signal Differential oltage Amplification db 12 11 1 9 8 7 6 5 4 3 2 1 TLE2141, TLE2141A, TLE2141Y LARGE-SIGNAL DIFFERENTIAL OLTAGE AMPLIFICATION AND PHASE SHIFT FREQUENCY Phase Shift RL = 2 kω CL = 1 pf AD 1 1 1 1 1 k 1 k 1 k 1 M f Frequency Hz Figure 13 Figure 14 2 4 6 8 1 12 14 16 18 2 22 24 26 1 M Phase Shift zo Closed-Loop Output Impedance Ω 1 1 1.1.1 CLOSED-LOOP OUTPUT IMPEDANCE FREQUENCY 3 Ω AD = 1 AD = 1 AD = 1 Short-Circuit Output Current ma IOS 6 5 4 3 SHORT-CIRCUIT OUTPUT CURRENT FREE-AIR TEMPERATURE ID = 1 ID = 1 O =.1 1 k 1 k 1 k 1 M f Frequency Hz 1 M 2 75 5 25 25 5 75 1 125 15 TA Free-Air Temperature C Figure 15 Figure 16 Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices. POST OFFICE BOX 65533 DALLAS, TEXAS 75265 5 23

TYPICAL CHARACTERISTICS CMRR Common-Mode Rejection Ratio db 14 12 1 8 6 4 2 COMMON-MODE REJECTION RATIO FREQUENCY CMRR Common-Mode Rejection Ratio db 12 116 112 18 14 COMMON-MODE REJECTION RATIO FREE-AIR TEMPERATURE IC = ICRmin CC = 5 1 1 k 1 k f Frequency Hz 1 k 1 M 1 75 5 25 25 5 75 1 125 15 TA Free-Air Temperature C Figure 17 Figure 18 ksr Supply-oltage Rejection Ratio db 16 14 12 1 8 6 4 SUPPLY-OLTAGE REJECTION RATIO FREQUENCY ksr + ksr 2 CC ± = ±2.5 to ±15 1 1 1 k 1 k 1 k 1 M 1 M f Frequency Hz ksr Supply-oltage Rejection Ratio db 11 18 16 14 12 SUPPLY-OLTAGE REJECTION RATIO FREE-AIR TEMPERATURE CC ± = ±2.5 to ±15 1 75 5 25 25 5 75 1 125 15 TA Free-Air Temperature C Figure 19 Figure 2 Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices. 5 24 POST OFFICE BOX 65533 DALLAS, TEXAS 75265

TYPICAL CHARACTERISTICS TLE2141, TLE2141A, TLE2141Y SUPPLY CURRENT FREE-AIR TEMPERATURE SUPPLY CURRENT SUPPLY OLTAGE 3.8 O = No Load 4 I IDD CC Supply Current ma 3.6 3.4 3.2 3 CC ± = ±2.5 IDD CC Supply Current ma 3.5 3 2.5 2.8 75 5 25 25 5 75 1 125 15 TA Free-Air Temperature C O = No Load 2 4 8 12 16 2 CC ± Supply oltage 24 Figure 21 Figure 22 EQUIALENT INPUT NOISE OLTAGE FREQUENCY INPUT NOISE OLTAGE OER A 1-SECOND PERIOD n/ Hz 25 2 RS = 2 Ω 75 5 f =.1 to 1 Hz n n Equivalent Input Noise oltage 15 1 5 1 1 1 1 k 1 k Input Noise oltage n 25 25 5 75 2 4 6 8 1 f Frequency Hz t Time s Figure 23 Figure 24 Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices. POST OFFICE BOX 65533 DALLAS, TEXAS 75265 5 25

TYPICAL CHARACTERISTICS Hz I n Noise Current pa/ 8 6 4 2 1 NOISE CURRENT FREQUENCY 1 1 1 k 1 k f Frequency Hz THD + N Total Harmonic Distortion + Noise % 1%.1%.1% TOTAL HARMONIC DISTORTION PLUS NOISE FREQUENCY O(PP) = 2 A = 1 RL = 6 Ω A = 1 RL = 6 Ω A = 1 RL = 2 kω A = 1 RL = 2 kω.1% 1 1 1 k 1 k 1 k f Frequency Hz Figure 25 Figure 26 SLEW RATE FREE-AIR TEMPERATURE SLEW RATE LOAD CAPACITANCE 6 5 5 SR + 4 µ s SR Slew Rate / 4 3 2 SR 1 AD = 1 RL = 2 kω CL = 5 pf 75 5 25 25 5 75 1 125 15 TA Free-Air Temperature C µ s SR Slew Rate / 3 2 1.1 AD = 1 SR.1 1 CL Load Capacitance nf SR+ 1 Figure 27 Figure 28 Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices. 5 26 POST OFFICE BOX 65533 DALLAS, TEXAS 75265

TYPICAL CHARACTERISTICS TLE2141, TLE2141A, TLE2141Y 15 NONINERTING LARGE-SIGNAL PULSE RESPONSE 15 INERTING LARGE-SIGNAL PULSE RESPONSE 1 1 O O Output oltage 5 1 15 1 5 5 AD = 1 RL = 2 kω CL = 3 pf 2 3 4 5 O O Output oltage 5 1 15 AD = 1 RL = 2 kω CL = 3 pf 1 2 3 4 5 t Time µs t Time µs Figure 29 Figure 3 O O Output oltage m 1 5 5 1 SMALL-SIGNAL PULSE RESPONSE AD = 1 RL = 2 kω CL = 3 pf 4 8 12 16 t Time ns B B1 1 Unity-Gain Bandwidth MHz 7 6 5 4 3 2 1 1 1 UNITY-GAIN BANDWIDTH LOAD CAPACITANCE CL Load Capacitance pf RL = 2 kω 1 1 Figure 31 Figure 32 Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices. POST OFFICE BOX 65533 DALLAS, TEXAS 75265 5 27

TYPICAL CHARACTERISTICS GAIN MARGIN LOAD CAPACITANCE PHASE MARGIN LOAD CAPACITANCE 14 12 AD = 1 RL = 2 kω to O = 1 to 1 7 6 Gain Margin db 1 8 6 4 Phase Margin φ m 5 4 3 2 2 1 1 1 CL Load Capacitance pf 1 1 RL = 2 kω 1 1 1 1 CL Load Capacitance pf Figure 33 Figure 34 Data at high and low temperatures are applicable only within the rated operating free-air temperature ranges of the various devices. input offset voltage nulling APPLICATION INFORMATION The TLE2141 series offers external null pins that can be used to further reduce the input offset voltage. If this feature is desired, connect the circuit of Figure 35 as shown. If external nulling is not needed, the null pins may be left unconnected. 3 IN + 2 IN 5 OFFSET N2 + 5 kω 6 OUT 1 OFFSET N1 1 kω CC (split supply) GND (single supply) Figure 35. Input Offset oltage Null Circuit 5 28 POST OFFICE BOX 65533 DALLAS, TEXAS 75265

IMPORTANT NOTICE Texas Instruments (TI) reserves the right to make changes to its products or to discontinue any semiconductor product or service without notice, and advises its customers to obtain the latest version of relevant information to verify, before placing orders, that the information being relied on is current. TI warrants performance of its semiconductor products and related software 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, INTENDED, AUTHORIZED, OR WARRANTED TO BE SUITABLE FOR USE IN LIFE-SUPPORT APPLICATIONS, DEICES OR SYSTEMS OR OTHER CRITICAL APPLICATIONS. Inclusion of TI products in such applications is understood to be fully at the risk of the customer. Use of TI products in such applications requires the written approval of an appropriate TI officer. Questions concerning potential risk applications should be directed to TI through a local SC sales office. In order to minimize risks associated with the customer s applications, adequate design and operating safeguards should be provided by the customer to minimize inherent or procedural hazards. TI assumes no liability for applications assistance, customer product design, software performance, or infringement of patents or services described herein. Nor does TI 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. Copyright 1995, Texas Instruments Incorporated