LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 D D D D D D D D DW PACKAGE (TOP VIEW) Single-Supply Operation: Input Voltage Range Extends to Ground, and Output Swings to Ground While Sinking Current Input Offset Voltage 300 µV Max at 25°C for LT1014 Offset Voltage Temperature Coefficient 2.5 µV/°C Max for LT1014 Input Offset Current 1.5 nA Max at 25°C for LT1014 High Gain 1.2 V/µV Min (RL = 2 kΩ), 0.5 V/µV Min (RL = 600 Ω) for LT1014 Low Supply Current 2.2 mA Max at 25°C for LT 1014 Low Peak-to-Peak Noise Voltage 0.55 µV Typ Low Current Noise 0.07 pA/√Hz Typ 1OUT 1IN– 1IN+ VCC+ 2IN+ 2IN– 2OUT NC 1OUT 1IN– 1IN+ VCC+ 2IN+ 2IN– 2OUT The LT1014, LT1014A, and LT1014D are quad precision operational amplifiers with 14-pin industry-standard configuration. They feature low offset-voltage temperature coefficient, high gain, low supply current, and low noise. 2 15 3 14 4 13 5 12 6 11 7 10 8 9 4OUT 4IN– 4IN+ VCC–/GND 3IN+ 3IN– 3OUT NC 1 14 2 13 3 12 4 11 5 10 6 9 7 8 4OUT 4IN– 4IN+ VCC– 3IN+ 3IN– 3OUT 1IN– 1OUT NC 4OUT 4IN– FK PACKAGE (TOP VIEW) 1IN+ NC VCC+ NC 2IN+ 4 3 2 1 20 19 18 5 17 6 16 7 15 8 14 9 10 11 12 13 4IN+ NC VCC–/GND NC 3IN+ 2IN– 2OUT NC 3OUT 3IN– The LT1014C and LT1014 AC are characterized for operation from 0°C to 70°C. The LT1014I and LT1014DI are characterized for operation from –40°C to 105°C. The LT1014M, LT1014AM and LT1014DM are characterized for operation over the full military temperature range of –55°C to 125°C. 16 J OR N PACKAGE (TOP VIEW) description The LT1014, LT1014A, and LT1014D can be operated with both dual ±15ĆV and single 5ĆV power supplies. The common-mode input voltage range includes ground, and the output voltage can also swing to within a few milivolts of ground. Crossover distortion is eliminated. 1 NC – No internal connection 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. Copyright 1999, Texas Instruments Incorporated 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. POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 1 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 AVAILABLE OPTIONS PACKAGED DEVICES VIO max AT 25°C SMALL OUTLINE (DW) CHIP CARRIER (FK) CERAMIC DIP (J) PLASTIC DIP (N) 0°C to 70°C 300 µ µV 800 µV — LT1014DDW — — — — LT1014CN LT1014DN –40°C 40°C to 105°C 300 µ µV 800 µV — LT1014DIDW — — — — LT1014IN LT1014DIN –55°C to 125°C 180 µV 300 µV µ 800 µV — — LT1014DMDW LT1014AMFK LT1014MFK — LT1014AMJ LT1014MJ — — LT1014MN LT1014DMN TA The DW package is available taped and reeled. Add the suffix R to the device type (e.g., LT1014DDWR). 2 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 400 Ω 400 Ω Q21 Q1 Q5 Q22 Q2 9 kΩ Q6 Q12 75 pF Q28 Q27 9 kΩ Component values are nominal. VCC– IN+ IN– V CC+ Q9 Q11 Q13 5 kΩ Q7 Q8 5 kΩ Q29 Q4 1.6 kΩ Q16 Q3 1.6 kΩ Q10 10 pF 3.9 kΩ Q14 1.6 kΩ 2 kΩ Q19 2.5 pF Q17 Q18 21 pF Q15 1.3 kΩ Q20 Q32 100 Ω Q25 Q23 Q31 Q26 2 kΩ 10 pF 2 kΩ 4 pF 2.4 kΩ Q30 1 kΩ Q24 Q34 18 Ω Q33 14 kΩ 30 Ω 42 kΩ OUT Q35 Q40 Q37 Q38 J1 600 Ω Q39 Q41 Q36 800 Ω LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 schematic (each amplifier) 3 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 absolute maximum ratings over operating free-air temperature range (unless otherwise noted)† Supply voltage (see Note 1): VCC+ . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 22 V VCC– . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . –22 V Differential input voltage (see Note 2) . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . ±30 V Input voltage range, VI (any input) (see Note 1) . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . VCC– – 5 V to VCC+ Duration of short-circuit current at (or below) TA = 25°C (see Note 3) . . . . . . . . . . . . . . . . . . . . . . . . . Unlimited Continuous total power dissipation . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . See Dissipation Rating Table Operating free-air temperature range, TA: LT1014C, LT1014DC . . . . . . . . . . . . . . . . . . . . . . . . . . –0°C to 70°C LT1014I, LT1014DI . . . . . . . . . . . . . . . . . . . . . . . . . . –40°C to 105°C LT1014M, LT1014AM, LT1014DM . . . . . . . . . . . . . –55°C to 125°C Lead temperature 1,6 mm (1/16 inch) from case for 60 seconds: J package . . . . . . . . . . . . . . . . . . . . . 300°C Lead temperature 1,6 mm (1/16 inch) from case for 10 seconds: DW or N package . . . . . . . . . . . . . . . 260°C Case temperature for 60 seconds: FK package . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 260°C Storage temperature range, Tstg . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . –65°C to 150°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 VCC+ and VCC–. 2. Differential voltages are at the noninverting input with respect to the inverting input. 3. The output may be shorted to either supply. DISSIPATION RATING TABLE 4 PACKAGE TA ≤ 25°C POWER RATING DW FK DERATING FACTOR ABOVE TA = 25°C TA = 70°C POWER RATING TA = 105°C POWER RATING TA = 125°C POWER RATING 1025 mV 8.2 mW/°C 1375 mV 11.0 mW/°C 656 mW 369 mW 205 mW 880 mW 495 mW J 1375 mV 275 mW 11.0 mW/°C 880 mW 495 mW 275 mW N 1150 mV 9.2 mW/°C 736 mW 414 mW 230 mW POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 electrical characteristics at specified free-air temperature, VCC± = ±15 V, VIC = 0 (unless otherwise noted) PARAMETER VIO Input offset voltage aV Temperature coeficient of input offset voltage IO TA† TEST CONDITIONS Input offset current IIB Input bias current VICR VOM Maximum peak output voltage swing AVD Large-signal L i l diff differential ti l voltage am amplification lification CMRR kSVR Common-mode rejection ratio Supply-voltage rejection ratio (∆VCC/∆VIO) Channel separation MAX 60 300 Full range 0.4 25°C 0.5 25°C 0.15 Full range –12 Full range VO = ±10 V, V VO = ±10 V, VIC = –15 V to 13.5 V VIC = –15 V to 13 V VCC± = ±2 V to ±18 V VO = ±10 V, 200 –15 to 13.5 Full range –15 to 13 25°C ±12.5 MAX 800 1000 2.5 0.7 5 1.5 0.15 –15.3 to 13.8 1.5 2.8 –30 –12 –30 –38 –15 to 13.5 UNIT µV µV/°C µV/mo 0.5 –38 25°C –15.3 to 13.8 nA nA V –15 to 13 ±14 ±12.5 ±14 Full range ±12 25°C 0.5 2 0.5 2 25°C 1.2 8 1.2 8 Full range 0.7 25°C 97 Full range 94 25°C 100 Full range 97 RL = 600 Ω RL = 2 kΩ TYP‡ 2.8 25°C RL = 2 kΩ MIN 550 Full range Common-mode input voltage range LT1014DC TYP‡ 25°C RS = 50 Ω Long-term drift of input offset voltage IIO LT1014C MIN V ±12 V/µV 0.7 117 97 117 dB 94 117 100 117 dB RL = 2 kΩ 97 25°C 120 137 120 137 dB rid Differential input resistance 25°C 70 300 70 300 MΩ ric Common-mode input resistance 25°C 4 4 GΩ ICC Supply y current per amplifier 25°C 0.35 Full range 0.55 0.6 0.35 0.55 0.6 mA † Full range is 0°C to 70°C. ‡ All typical values are at TA = 25°C. POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 5 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 electrical characteristics at specified free-air temperature, VCC± = 5 V, VCC– = 0, VO = 1.4 V, VIC = 0 (unless otherwise noted) PARAMETER VIO Input offset voltage IIO Input offset current IIB Input bias current VICR Common-mode input in ut voltage range LT1014C MIN LT1014DC TYP MAX 90 450 25°C RS = 50 Ω Full range 0.2 25°C –15 M i t t Maximum peakk output voltage swing Output low, Output high, Output high, g , RL = 600 Ω to GND AVD Large-signal differential voltage amplification ICC Supplyy current per amplifier 0 to 3.5 Full range 0 to 3 –0.3 to 3.8 950 2 6 –50 –15 –50 –90 0 to 3.5 –0.3 to 3.8 µV nA nA V 25°C 15 25 15 25 25°C 5 10 5 10 13 25°C UNIT 0 to 3 Full range Isink = 1 mA No load 0.2 –90 25°C MAX 1200 6 Full range Output low,, RL = 600 Ω to GND TYP 250 2 Full range No load MIN 570 25°C Output low, VOM TA† TEST CONDITIONS 220 13 350 220 mV 350 25°C 4 4.4 4 4.4 25°C 3.4 4 3.4 4 V Full range 3.2 1 V/µV VO = 5 mV to 4 V, RL = 500 Ω 3.2 25°C 1 25°C 0.3 Full range 0.5 0.3 0.55 0.5 0.55 mA † Full range is 0°C to 70°C. operating characteristics, VCC± = ±15 V, VIC = 0, TA = 25°C PARAMETER SR 6 TEST CONDITIONS Slew rate MIN TYP 0.2 0.4 f = 10 Hz 24 f = 1 kHz 22 MAX UNIT V/µs Vn Equivalent input noise voltage VN(PP) In Peak-to-peak equivalent input noise voltage f = 0.1 Hz to 10 Hz 0.55 µV Equivalent input noise current f = 10 Hz 0.07 pA/√Hz POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 nV/√Hz LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 electrical characteristics at specified free-air temperature, VCC± = ±15 V, VIC = 0 (unless otherwise noted) PARAMETER VIO Input offset voltage aV Temperature coeficient of input offset voltage IO TA† TEST CONDITIONS Input offset current IIB Input bias current VICR VOM Maximum peak output voltage swing AVD Large-signal L i l diff differential ti l voltage am amplification lification CMRR kSVR Common-mode rejection ratio Supply-voltage rejection ratio (∆VCC/∆VIO) Channel separation MAX 60 300 Full range 0.4 25°C 0.5 25°C 0.15 Full range –12 Full range VO = ±10 V, V VO = ±10 V, VIC = –15 15 V to 13 13.5 5V VCC± = ±2 V to ±18 V VO = ±10 V, 200 –15 to 13.5 Full range –15 to 13 25°C ±12.5 MAX 800 1000 2.5 0.7 5 1.5 0.15 –15.3 to 13.8 1.5 2.8 –30 –12 –30 –38 –15 to 13.5 UNIT µV µV/°C µV/mo 0.5 –38 25°C –15.3 to 13.8 nA nA V –15 to 13 ±14 ±12.5 ±14 Full range ±12 25°C 0.5 2 0.5 2 25°C 1.2 8 1.2 8 Full range 0.7 25°C 97 Full range 94 25°C 100 Full range 97 RL = 600 Ω RL = 2 kΩ TYP‡ 2.8 25°C RL = 2 kΩ MIN 550 Full range Common-mode input voltage range LT1014DI TYP‡ 25°C RS = 50 Ω Long-term drift of input offset voltage IIO LT1014I MIN V ±12 V/µV 0.7 117 97 117 dB 94 117 100 117 dB RL = 2 kΩ 97 25°C 120 137 120 137 dB rid Differential input resistance 25°C 70 300 70 300 MΩ ric Common-mode input resistance 25°C 4 4 GΩ ICC Supply y current per amplifier 25°C 0.35 Full range 0.55 0.6 0.35 0.55 0.6 mA † Full range is –40°C to 105°C. ‡ All typical values are at TA = 25°C. POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 7 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 electrical characteristics at specified free-air temperature, VCC+ = 5 V, VCC– = 0, VO = 1.4 V, VIC = 0 (unless otherwise noted) PARAMETER VIO Input offset voltage IIO Input offset current IIB Input bias current VICR Common-mode input in ut voltage range LT1014I MIN LT1014DI TYP MAX 90 450 25°C RS = 50 Ω Full range 0.2 –15 Full range M i k Maximum peak out ut voltage swing output Output low, Output high, Output high, g , RL = 600 Ω to GND AVD Large-signal differential voltage amplification ICC Supplyy current per amplifier 0 to 3.5 Full range 0 to 3 –0.3 to 3.8 950 2 6 –50 –15 –50 –90 0 to 3.5 –0.3 to 3.8 µV nA nA V 25°C 15 25 15 25 25°C 5 10 5 10 13 25°C UNIT 0 to 3 Full range Isink = 1 mA No load 0.2 –90 25°C MAX 1200 6 25°C Output low,, RL = 600 Ω to GND TYP 250 2 Full range No load MIN 570 25°C Output low, VOM TA† TEST CONDITIONS 220 13 350 220 mV 350 25°C 4 4.4 4 4.4 25°C 3.4 4 3.4 4 V Full range 3.2 1 V/µV VO = 5 mV to 4 V, RL = 500 Ω 3.2 25°C 1 25°C 0.3 Full range 0.5 0.3 0.55 0.5 0.55 mA † Full range is –40°C to 105°C. operating characteristics, VCC+ = ±15 V, VIC = 0, TA = 25°C PARAMETER 8 TEST CONDITIONS MIN TYP 0.2 0.4 MAX UNIT SR Slew rate Vn Equivalent input noise voltage VN(PP) In Peak-to-peak equivalent input noise voltage f = 0.1 Hz to 10 Hz 0.55 µV Equivalent input noise current f = 10 Hz 0.07 pA/√Hz POST OFFICE BOX 655303 f = 10 Hz 24 f = 1 kHz 22 • DALLAS, TEXAS 75265 V/µs nV/√Hz LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 electrical characteristics at specified free-air temperature, VCC± = ±15 V, VIC = 0 (unless otherwise noted) PARAMETER VIO aV IO Input offset voltage TEST CONDITIONS RS = 50 Ω Temperature coefficient of input offset voltage Long-term drift of input offset voltage IIO Input offset current IIB Input bias current VICR Common-mode input voltage g range VOM Maximum peak output voltage swing AVD Large-signal differential voltage amplification CMRR kSVR Common-mode rejection ratio TA† MIN LT1014M TYP‡ MAX 25°C 60 Full range Full range 0.5 25°C 0.5 25°C 0.15 –12 Full range VO = ±10 V,, RL = 2 kΩ 60 2.5 0.5 –15 to 13.5 Full range –14.9 to 13 25°C ±12.5 Full range ±11.5 180 200 1.5 0.15 2 0.5 –12 –15.3 to 13.8 0.8 –12 –15.3 to 13.8 ±13 1.5 –30 –45 –15 to 13.5 UNIT µV µV/°C µV/mo 5 –20 –14.9 to 13 ±14 0.15 –30 –15 to 13.5 2.5 0.5 2.8 –30 800 1000 0.5 –45 25°C LT1014DM TYP‡ MAX MIN 350 5 25°C VO = ±10 V, RL = 600 Ω 300 550 Full range RL = 2 kΩ LT1014AM TYP‡ MAX MIN –15.3 to 13.8 nA nA V –14.9 to 13 ±14 ±12.5 ±12 ±14 V ±11.5 25°C 0.5 2 0.8 2.2 0.5 2 25°C 1.2 8 1.5 8 1.2 8 Full range 0.25 0.4 V/ V V/µV 0.25 VIC = –15 V to 13.5 V 25°C 97 VIC = –14.9 V to 13 V Full range 94 25°C 100 Full range 97 25°C 120 137 123 137 120 137 dB 70 300 100 300 70 300 MΩ 4 GΩ Supply-voltage rejection ratio (∆VCC/∆VIO) VCC± = ±2 V to ±18 V Channel separation VO = ±10 V, RL = 2 kΩ 117 100 117 97 117 dB 96 117 103 94 117 100 117 dB 100 rid Differential input resistance 25°C ric Common-mode input resistance 25°C 4 ICC Supply y current per amplifier 25°C 0.35 Full range 97 4 0.55 0.7 0.35 0.50 0.6 0.35 0.55 0.7 mA † Full range is –55°C to 125°C. ‡ All typical values are at TA = 25°C. POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 9 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 electrical characteristics at specified free-air temperature, VCC+ = 5 V, VCC– = 0, VO = 1.4 V, VIC = 0 (unless otherwise noted) PARAMETER VIO Input offset voltage IIO Input offset current IIB Input bias current VICR Commonmode input voltage range TEST CONDITIONS RS = 50Ω TA† AVD Large-signal differential voltage amplification ICC Supplyy current per amplifier LT1014AM MAX MIN LT1014DM TYP MAX MIN TYP MAX 25°C 90 450 90 280 250 950 400 1500 400 960 800 2000 125°C 200 750 200 480 560 1200 25°C 0.2 2 0.2 1.3 0.2 2 –15 –50 –15 –35 –15 –50 RS = 50Ω, VIC = 0.1 V Full range 10 25°C Full range 25°C Full range Output low, RL = 600Ω to GND Maximum peak output voltage swing TYP Full range Output low, No load VOM LT1014M MIN 7 –120 0 to 3.5 10 –90 –0.3 to 3.8 0 to 3.5 0.1 to 3 –0.3 to 3.8 µV nA –120 0 to 3.5 0.1 to 3 UNIT –0.3 to 3.8 V 0.1 to 3 25°C 15 25 15 25 15 25 25°C 5 10 5 10 5 10 mV Full range 18 15 18 Output low, Isink = 1 mA 25°C Output high, No load 25°C 4 4.4 4 4.4 4 4.4 Output high, 25°C 3.4 4 3.4 4 3.4 4 V RL = 600Ω to GND Full range 3.1 1 V/µV VO = 5 mV to 4 V, RL = 500Ω 220 220 350 3.2 25°C 1 25°C 0.3 Full range 350 220 3.1 1 0.5 350 0.3 0.65 0.45 0.3 0.55 0.5 0.65 mA † Full range is –55°C to 125°C. operating characteristics, VCC± = ±15 V, VIC = 0, TA = 25°C PARAMETER SR TEST CONDITIONS Slew rate MIN TYP 0.2 0.4 f = 10 Hz 24 f = 1 kHz 22 MAX UNIT V/µs Vn Equivalent input noise voltage VN(PP) In Peak-to-peak equivalent input noise voltage f = 0.1 Hz to 10 Hz 0.55 µV Equivalent input noise current f = 10 Hz 0.07 pA/√Hz 10 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 nV/√Hz LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 TYPICAL CHARACTERISTICS Table of Graphs FIGURE VIO VIO Input offset voltage vs Balanced source resistance 1 Input offset voltage vs Free-air temperature 2 ∆VIO IIO Warm-Up Change in input offset voltage vs Elapsed time 3 Input offset current vs Free-air temperature 4 IIB VIC Input bias current vs Free-air temperature 5 AVD Common-mode input voltage vs Input bias current Differential voltage amplification 6 vs Load resistance 7, 8 vs Frequency 9, 10 Channel separation vs Frequency 11 Output saturation voltage vs Free-air temperature 12 CMRR Common-mode rejection ratio vs Frequency 13 kSVR Supply-voltage rejection ratio vs Frequency 14 ICC IOS Supply current vs Free-air temperature 15 Short-circuit output current vs Elapsed time 16 Vn In Equivalent input noise voltage vs Frequency 17 Equivalent input noise current vs Frequency 17 VN(PP) Peak-to-peak input noise voltage vs Time 18 Pulse response (small signal) vs Time 19, 21 Pulse response (large signal) vs Time 20, 22, 23 Phase shift vs Frequency POST OFFICE BOX 655303 9 • DALLAS, TEXAS 75265 11 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 TYPICAL CHARACTERISTICS† INPUT OFFSET VOLTAGE OF REPRESENTATIVE UNITS vs FREE-AIR TEMPERATURE LT1014 INPUT OFFSET VOLTAGE vs BALANCED SOURCE RESISTANCE 250 10 1 VCC± = 5 V VCC– = 0 0.1 RS VCC± = ±15 V 0.01 1k – + 150 100 50 0 –50 –100 –150 –200 RS 3k VCC± = ±15 V 200 VIO – Input Offset Voltage – µ V VIO – Input Offset Voltage – mV TA = 25°C 10 k 30 k 100 k 300 k 1 M –250 –50 3 M 10 M –25 0 Rs – Source Resistance – Ω I IO – Input Offset Current – nA ∆V IO – Change in Input Offset Votlage – µ V 3 2 N Package 1 0.8 0.6 VCC± = ±2.5 V 0.4 VCC+ = 5 V, VCC– = 0 0.2 J Package 2 3 4 VCC± = ±15 V 5 0 –50 –25 0 25 50 75 100 TA – Free-Air Temperature – °C t – Time After Power-On – min 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. 12 125 VIC = 0 4 1 100 1 VCC± = ±15 V TA = 25°C 0 75 INPUT OFFSET CURRENT vs FREE-AIR TEMPERATURE WARM-UP CHANGE IN INPUT OFFSET VOLTAGE vs ELAPSED TIME 0 50 Figure 2 Figure 1 5 25 TA – Free-Air Temperature – °C POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 125 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 TYPICAL CHARACTERISTICS† COMMON-MODE INPUT VOLTAGE vs INPUT BIAS CURRENT INPUT BIAS CURRENT vs FREE-AIR TEMPERATURE –30 5 15 VIC = 0 I IB – Input Bias Current – nA –25 –20 VCC + = 5 V, VCC– = 0 –15 VCC± = ±2.5 V –10 VCC± = ±15 V –5 0 –50 10 4 5 3 VCC± = ±15 V (Left Scale) 1 –10 0 –15 –25 0 25 50 75 100 0 125 –5 –10 –25 –1 –30 VCC± = ±15 V VO = ±10 V TA = 25°C TA = –55°C 1 TA = 125°C 0.4 1k DIFFERENTIAL VOLTAGE AMPLIFICATION vs LOAD RESISTANCE A VD – Differential Voltage Amplivication – V/µ V 10 400 –20 Figure 6 DIFFERENTIAL VOLTAGE AMPLIFICATION vs LOAD RESISTANCE 4 –15 IIB – Input Bias Current – nA Figure 5 A VD – Differential Voltage Amplivication – V/µ V 2 –5 TA – Free-Air Temperature – °C 0.1 100 VCC+ = 5 V VCC– = 0 (Right Scale) 0 VIC – Common-Mode Input Voltage – V VIC – Common-Mode Input Voltage – V TA = 25°C 4k 10 k 10 VCC+ = 5 V, VCC– = 0 VO = 20 mV to 3.5 V 4 TA = –55°C 1 TA = 25°C TA = 125°C 0.4 0.1 100 RL – Load Resistance – Ω 400 1k 4k 10 k RL – Load Resistance – Ω 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 655303 • DALLAS, TEXAS 75265 13 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 TYPICAL CHARACTERISTICS† VCC± = ±15 V 140 80° VIC = 0 CL = 100 pF TA = 25°C 100° 120° AVD VCC+ = 5 V VCC– = 0 10 140° 160° VCC+ = 5 V VCC– = 0 0 180° 200° VCC± = ±15 V 220° –10 0.01 0.3 1 A VD – Differential Voltage Amplivication – dB 20 DIFFERENTIAL VOLTAGE AMPLIFICATION vs FREQUENCY φ – Phase Shift A VD – Differential Voltage Amplivication – dB DIFFERENTIAL VOLTAGE AMPLIFICATION AND PHASE SHIFT vs FREQUENCY 120 100 80 VCC + = 5 V VCC – = 0 40 20 0 1 10 Figure 9 OUTPUT SATURATION VOLTAGE vs FREE-AIR TEMPERATURE Limited by Thermal Interaction VCC+ = 5 V to 30 V VCC– = 0 Output Saturation Voltage – V Channel Separation – dB 10 VCC± = ±15 V VI(PP) = 20 V to 5 kHz RL = 2 kΩ TA = 25°C 120 RL = 100 Ω RL = 1 kΩ 100 Limited by Pin-to-Pin Capacitance 80 1 k 10 k 100 k 1 M 10 M Figure 10 CHANNEL SEPARATION vs FREQUENCY 140 100 f – Frequency – Hz f – Frequency – MHz 160 VCC± = ±15 V 60 –20 0.01 0.1 240° 10 3 CL = 100 pF TA = 25°C Isink = 10 mA 1 Isink = 5 mA Isink = 1 mA 0.1 Isink = 100 µA Isink = 10 µA Isink = 0 60 10 100 1k 10 k 100 k 1M 0.01 –50 –25 0 25 50 75 100 TA – Free-Air Temperature – °C f – Frequency – Hz 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. 14 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 125 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 TYPICAL CHARACTERISTICS† SUPPLY-VOLTAGE REJECTION RATIO vs FREQUENCY COMMON-MODE REJECTION RATIO vs FREQUENCY 140 TA = 25°C K SVR – Supply-Voltage Rejection Ratio – dB CMRR – Common-Mode Rejection Ratio – dB 120 100 VCC± = ±15 V VCC+ = 5 V VCC– = 0 80 60 40 20 0 10 100 1k 100 k 10 k 120 100 Positive Supply Negative Supply 80 60 40 20 0 0.1 1M VCC± = ± 15 V TA = 25°C 1 f – Frequency – Hz I OS – Short-Circuit Output Current – mA I CC – Supply Current Per Amplifier –µ A 40 420 380 VCC± = ±15 V 340 VCC+ = 5 V VCC– = 0 0 25 10 k 100 k 1M SHORT-CIRCUIT OUTPUT CURRENT vs ELAPSED TIME 460 –25 1k Figure 14 SUPPLY CURRENT vs FREE-AIR TEMPERATURE 260 –50 100 f – Frequency – Hz Figure 13 300 10 50 75 100 125 VCC± = ±15 V TA = –55°C 30 TA = 25°C 20 TA = 125°C 10 0 –10 –20 –30 –40 0 TA – Free-Air Temperature – °C TA = 125°C TA = 25°C TA = –55°C 1 2 3 t – Time – min 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 655303 • DALLAS, TEXAS 75265 15 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 TYPICAL CHARACTERISTICS PEAK-TO-PEAK INPUT NOISE VOLTAGE OVER A 10-SECOND PERIOD vs TIME 1000 300 300 In 100 100 Vn 30 30 1/f Corner = 2 Hz 10 1 VCC± = ±2 V to ±18 V f = 0.1 Hz to 10 Hz TA = 25°C 1600 1200 800 400 0 10 1k 100 10 2000 V N(PP) – Noise Voltage – nV VCC± = ±2 V to ±18 V TA = 25°C I n – Equivalent Input Noise Current –fA/ Hz Vn – Equivalent Input Noise Voltage – fA/ Hz 1000 EQUIVALENT INPUT NOISE VOLTAGE AND EQUIVALENT INPUT NOISE CURRENT vs FREQUENCY 0 2 4 VOLTAGE-FOLLOWER LARGE-SIGNAL PULSE RESPONSE vs TIME VOLTAGE-FOLLOWER SMALL-SIGNAL PULSE RESPONSE vs TIME 6 VCC± = ±15 V AV = 1 TA = 25°C 5 40 V O – Output Voltage – V V O – Output Voltage – mV 60 20 0 –20 4 2 1 0 –60 –1 –80 2 4 6 8 10 12 14 VCC+ = 5 V VCC– = 0 VI = 0 to 4 V RL = 0 AV = 1 TA = 25°C 3 –40 0 –2 t – Time – µs 0 10 20 30 t – Time – µs Figure 19 16 10 Figure 18 Figure 17 80 8 6 t – Time – s f – Frequency – Hz Figure 20 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 40 50 60 70 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 TYPICAL CHARACTERISTICS VOLTAGE-FOLLOWER SMALL-SIGNAL PULSE RESPONSE vs TIME 160 6 VCC+ = 5 V VCC– = 0 VI = 0 to 100 mV RL = 600 Ω to GND AV = 1 TA = 25°C 120 100 5 4 V O – Output Voltage – mV 140 80 60 40 2 1 0 0 –1 –20 0 20 40 60 80 VCC+ = 5 V VCC– = 0 VI = 0 to 4 V RL = 4.7 kΩ to 5 V AV = 1 TA = 25°C 3 20 –2 100 120 140 10 20 30 40 t – Time – µs 0 t – Time – µs Figure 21 50 60 70 Figure 22 VOLTAGE-FOLLOWER LARGE-SIGNAL PULSE RESPONSE vs TIME 6 5 V O – Output Voltage – V V O – Output Voltage – mV VOLTAGE-FOLLOWER LARGE-SIGNAL PULSE RESPONSE vs TIME 4 VCC+ = 5 V VCC– = 0 VI = 0 to 4 V RL = 0 AV = 1 TA = 25°C 3 2 1 0 –1 –2 0 10 20 30 40 50 60 70 t – Time – µs Figure 23 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 17 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 APPLICATION INFORMATION single-supply operation The LT1014 is fully specified for single-supply operation (VCC– = 0). The common-mode input voltage range includes ground, and the output swings within a few millivolts of ground. Furthermore, the LT1014 has specific circuitry that addresses the difficulties of single-supply operation, both at the input and at the output. At the input, the driving signal can fall below 0 V, either inadvertently or on a transient basis. If the input is more than a few hundred millivolts below ground, the LT1014 is designed to deal with the following two problems that can occur: 1. On many other operational amplifiers, when the input is more than a diode drop below ground, unlimited current flows from the substrate (VCC– terminal) to the input, which can destroy the unit. On the LT1014, the 400-Ω resistors in series with the input (see schematic) protect the device even when the input is 5 V below ground. 2. When the input is more than 400 mV below ground (at TA = 25°C), the input stage of similar type operational amplifiers saturates, and phase reversal occurs at the output. This can cause lockup in servo systems. Because of unique phase-reversal protection circuitry (Q21, Q22, Q27, and Q28), the LT1014 outputs do not reverse, even when the inputs are at –1.5 V (see Figure 24). However, this phase-reversal protection circuitry does not function when the other operational amplifier on the LT1014 is driven hard into negative saturation at the output. Phase-reversal protection does not work on an amplifier: D D D D When 4’s output is in negative saturation (the outputs of 2 and 3 have no effect) When 3’s output is in negative saturation (the outputs of 1 and 4 have no effect) When 2’s output is in negative saturation (the outputs of 1 and 4 have no effect) When 1’s output is in negative saturation (the outputs of 2 and 3 have no effect) At the output, other single-supply designs either cannot swing to within 600 mV of ground or cannot sink more than a few microproamperes while swinging to ground. The all-npn output stage of the LT1014 maintains its low output resistance and high gain characteristics until the output is saturated. In dual-supply operations, the output stage is free of crossover distortion. 4 3 2 1 0 –1 –2 5 V O – Output Voltage – V 5 V O – Output Voltage – V V I(PP) – Input Voltage – V 5 4 3 2 1 0 –1 (a) VI(PP) = –1.5 V to 4.5 V 4 3 2 1 0 –1 (b) Output Phase Reversal Exhibited by LM358 (c) No Phase Reversal Exhibited by LT1014 Figure 24. Voltage-Follower Response With Input Exceeding the Negative Common-Mode Input Voltage Range 18 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 APPLICATION INFORMATION comparator applications The single-supply operation of the LT1014 can be used as a precision comparator with TTL-compatible output. In systems using both operational amplifiers and comparators, the LT1014 can perform multiple duties (see Figures 25 and 26). 5 4 10 mV 5 mV 2 mV 3 2 Overdrive 1 V O – Output Voltage – V V O – Output Voltage – V 5 VCC+ = 5 V VCC– = 0 TA = 25°C 4 3 2 10 mV 5 mV 2 mV 1 Overdrive 0 100 mV 0 VCC+ = 5 V VCC– = 0 TA = 25°C 50 100 150 200 250 300 350 400 450 Differential Input Voltage Differential Input Voltage 0 100 mV 0 50 100 150 200 250 300 350 400 450 t – Time – µs t – Time – µs Figure 25. Low-to-High-Level Output Response for Various Input Overdrives Figure 26. High-to-Low-Level Output Response for Various Input Overdrives low-supply operation The minimum supply voltage for proper operation of the LT1014 is 3.4 V (three Ni-Cad batteries). Typical supply current at this voltage is 290 µA; therefore, power dissipation is only 1 mW per amplifier. offset voltage and noise testing Figure 30 shows the test circuit for measuring input offset voltage and its temperature coefficient. This circuit with supply voltages increased to ±20 V is also used as the burn-in configuration. The peak-to-peak equivalent input noise voltage of the LT1014 is measured using the test circuit shown in Figure 27. The frequency response of the noise tester indicates that the 0.1-Hz corner is defined by only one zero. The test time to measure 0.1-Hz to 10-Hz noise should not exceed 10 seconds, as this time limit acts as an additional zero to eliminate noise contribution from the frequency band below 0.1 Hz. An input noise-voltage test is recommended when measuring the noise of a large number of units. A 10-Hz input noise-voltage measurement correlates well with a 0.1-Hz peak-to-peak noise reading because both results are determined by the white noise and the location of the 1/f corner frequency. Noise current is measured by the circuit and formula shown in Figure 28. The noise of the source resistors is subtracted. POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 19 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 APPLICATION INFORMATION 0.1 µF 100 kΩ 10 Ω + 2 kΩ + LT1014 4.7 µF – 4.3 kΩ 22 µF Oscilloscope Rin = 1 MΩ LT1001 2.2 µF – AVD = 50,000 100 kΩ 110 kΩ 24.3 kΩ 0.1 µF NOTE A: All capacitor values are for nonpolarized capacitors only. Figure 27. 0.1-Hz to 10-Hz Peak-to-Peak Noise Test Circuit 10 kΩ 10 MΩ† 10 MΩ† + 100 Ω 10 MΩ† 10 MΩ† ƪ + V Vn LT1014 In – no 2 * (820 nV) 40 MW † Metal-film resistor Figure 28. Noise-Current Test Circuit and Formula 50 Ω (see Note A) 15 V 100 Ω (see Note A) + LT1014 VO = 1000 VIO – 50 Ω (see Note A) –15 V NOTE A: Resistors must have low thermoelectric potential. Figure 29. Test Circuit for VIO and αVIO 20 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 2 100 ƫń 1 2 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 APPLICATION INFORMATION 5V Q3 2N2905 820 Ω Q1 2N2905 T1‡ 10 µF + 68 Ω 1N4002 (4) 10 µF + SN74HC04 (6) 0.002 µF 10 kΩ 10 kΩ 0.33 µF Q4 2N2222 820 Ω Q2 2N2905 10 kΩ 100 kΩ 5V 10 Ω† ± 2 kΩ 1/4 LT1014 + 100 pF 5V 10 kΩ† 20-mA Trim 4 kΩ† 10 kΩ† 1 kΩ 4-mA Trim 4.3 kΩ 80 Ω† ± 1/4 LT1014 + 100 Ω† 4-mA to 20-mA OUT To Load 2.2 kΩ Max LT1004 1.2 V IN 0 to 4 V † 1% film resistor. Match 10-kΩ resistors 0.05%. ‡ T1 = PICO-31080 Figure 30. 5-V Powered, 4-mA to 20-mA Current-Loop Transmitter With 12-Bit Accuracy POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 21 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 APPLICATION INFORMATION 0.1 Ω 5V 100 kΩ – To Inverter Driver 1/4 LT1014 + 1N4002 (4) T1 10 µF + + 1/4 LT1014 – 68 kΩ† 4-mA to 20-mA OUT Fully Floating 10 kΩ† 301 Ω† 4 kΩ† 4.3 kΩ 5V 1 kΩ 20-mA Trim 2 kΩ 4-mA Trim LT1004 1.2 V IN 0 to 4 V † 1% film resistor Figure 31. Fully Floating Modification to 4-mA to 20-mA Current-Loop Transmitter With 8-Bit Accuracy 5V 1/2 LTC1043 IN+ 5 6 2 5 6 3 IN– 18 8 1/4 LT1014 1 µF 1 µF + – 15 7 4 OUT A R2 R1 1/2 LTC1043 IN+ 8 7 11 IN– + 1/4 LT1014 1 µF 1 µF 12 13 3 2 – 14 0.01 µF 1 OUT B R2 R1 NOTE A: VIO = 150 µV, AVD = (R1/R2) + 1, CMRR = 120 dB, VICR = 0 to 5 V Figure 32. 5-V Single-Supply Dual Instrumentation Amplifier 22 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 LT1014, LT1014A, LT1014D QUAD PRECISION OPERATIONAL AMPLIFIERS SLOS039C – JULY 1989 – REVISED SEPTEMBER 1999 APPLICATION INFORMATION 10 200 kΩ† 2 LT1014 20 kΩ 3 – 10 kΩ† 1 10 kΩ† + 10 kΩ ‡ 5V 13 RG (2 kΩ Typ) 12 1 µF ‡ 20 kΩ 5 IN+ – 4 14 200 kΩ 6 To Input Cable Shields – ‡ IN– 8 LT1014 9 5V + LT1014 + 10 kΩ OUT 11 – LT1014 7 + 10 kΩ† 10 kΩ† ‡ 5V † † 1% film resistor. Match 10-kΩ resistors 0.05%. ‡ For high source impedances, use 2N2222 as diodes (with collector connected to base). NOTE A: AVD = (400,000/RG) + 1 Figure 33. 5-V Powered Precision Instrumentation Amplifier POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 23 PACKAGE OPTION ADDENDUM www.ti.com 6-Jun-2005 PACKAGING INFORMATION Orderable Device Status (1) Package Type Package Drawing Pins Package Eco Plan (2) Qty 5962-89677012A ACTIVE LCCC FK 20 1 TBD 5962-8967701CA ACTIVE CDIP J 14 1 TBD 5962-89677022A ACTIVE LCCC FK 20 1 TBD 5962-8967702CA ACTIVE CDIP J 14 1 TBD LT1014AMFKB ACTIVE LCCC FK 20 1 TBD Lead/Ball Finish MSL Peak Temp (3) POST-PLATE Level-NC-NC-NC A42 SNPB Level-NC-NC-NC POST-PLATE Level-NC-NC-NC A42 SNPB Level-NC-NC-NC POST-PLATE Level-NC-NC-NC LT1014AMJ ACTIVE CDIP J 14 1 TBD A42 SNPB Level-NC-NC-NC LT1014AMJB ACTIVE CDIP J 14 1 TBD A42 SNPB Level-NC-NC-NC LT1014CN ACTIVE PDIP N 14 25 Pb-Free (RoHS) CU NIPDAU Level-NC-NC-NC LT1014CNE4 ACTIVE PDIP N 14 25 Pb-Free (RoHS) CU NIPDAU Level-NC-NC-NC LT1014DDW ACTIVE SOIC DW 16 40 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LT1014DDWE4 ACTIVE SOIC DW 16 40 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LT1014DDWR ACTIVE SOIC DW 16 2000 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LT1014DDWRE4 ACTIVE SOIC DW 16 2000 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LT1014DIDW ACTIVE SOIC DW 16 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LT1014DIDWR OBSOLETE SOIC DW 16 TBD Call TI LT1014DIN ACTIVE PDIP N 14 25 Pb-Free (RoHS) CU NIPDAU Level-NC-NC-NC LT1014DINE4 ACTIVE PDIP N 14 25 Pb-Free (RoHS) CU NIPDAU Level-NC-NC-NC LT1014DMDW ACTIVE SOIC DW 16 40 TBD CU NIPDAU Level-1-220C-UNLIM LT1014DN ACTIVE PDIP N 14 25 Pb-Free (RoHS) CU NIPDAU Level-NC-NC-NC LT1014DNE4 ACTIVE PDIP N 14 25 Pb-Free (RoHS) CU NIPDAU Level-NC-NC-NC LT1014IN OBSOLETE PDIP N 14 TBD Call TI LT1014MFKB ACTIVE LCCC FK 20 1 TBD LT1014MJ ACTIVE CDIP J 14 1 TBD A42 SNPB Level-NC-NC-NC LT1014MJB ACTIVE CDIP J 14 1 TBD A42 SNPB Level-NC-NC-NC 40 Call TI Call TI POST-PLATE Level-NC-NC-NC (1) The marketing status values are defined as follows: ACTIVE: Product device recommended for new designs. LIFEBUY: TI has announced that the device will be discontinued, and a lifetime-buy period is in effect. NRND: Not recommended for new designs. Device is in production to support existing customers, but TI does not recommend using this part in a new design. PREVIEW: Device has been announced but is not in production. Samples may or may not be available. OBSOLETE: TI has discontinued the production of the device. (2) Eco Plan - The planned eco-friendly classification: Pb-Free (RoHS) or Green (RoHS & no Sb/Br) - please check http://www.ti.com/productcontent for the latest availability information and additional product content details. TBD: The Pb-Free/Green conversion plan has not been defined. Pb-Free (RoHS): TI's terms "Lead-Free" or "Pb-Free" mean semiconductor products that are compatible with the current RoHS requirements for all 6 substances, including the requirement that lead not exceed 0.1% by weight in homogeneous materials. Where designed to be soldered Addendum-Page 1 PACKAGE OPTION ADDENDUM www.ti.com 6-Jun-2005 at high temperatures, TI Pb-Free products are suitable for use in specified lead-free processes. Green (RoHS & no Sb/Br): TI defines "Green" to mean Pb-Free (RoHS compatible), and free of Bromine (Br) and Antimony (Sb) based flame retardants (Br or Sb do not exceed 0.1% by weight in homogeneous material) (3) MSL, Peak Temp. -- The Moisture Sensitivity Level rating according to the JEDEC industry standard classifications, and peak solder temperature. Important Information and Disclaimer:The information provided on this page represents TI's knowledge and belief as of the date that it is provided. TI bases its knowledge and belief on information provided by third parties, and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. TI has taken and continues to take reasonable steps to provide representative and accurate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals. TI and TI suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release. In no event shall TI's liability arising out of such information exceed the total purchase price of the TI part(s) at issue in this document sold by TI to Customer on an annual basis. Addendum-Page 2 MECHANICAL DATA MLCC006B – OCTOBER 1996 FK (S-CQCC-N**) LEADLESS CERAMIC CHIP CARRIER 28 TERMINAL SHOWN 18 17 16 15 14 13 NO. OF TERMINALS ** 12 19 11 20 10 A B MIN MAX MIN MAX 20 0.342 (8,69) 0.358 (9,09) 0.307 (7,80) 0.358 (9,09) 28 0.442 (11,23) 0.458 (11,63) 0.406 (10,31) 0.458 (11,63) 21 9 22 8 44 0.640 (16,26) 0.660 (16,76) 0.495 (12,58) 0.560 (14,22) 23 7 52 0.739 (18,78) 0.761 (19,32) 0.495 (12,58) 0.560 (14,22) 24 6 68 0.938 (23,83) 0.962 (24,43) 0.850 (21,6) 0.858 (21,8) 84 1.141 (28,99) 1.165 (29,59) 1.047 (26,6) 1.063 (27,0) B SQ A SQ 25 5 26 27 28 1 2 3 4 0.080 (2,03) 0.064 (1,63) 0.020 (0,51) 0.010 (0,25) 0.020 (0,51) 0.010 (0,25) 0.055 (1,40) 0.045 (1,14) 0.045 (1,14) 0.035 (0,89) 0.045 (1,14) 0.035 (0,89) 0.028 (0,71) 0.022 (0,54) 0.050 (1,27) 4040140 / D 10/96 NOTES: A. B. C. D. E. All linear dimensions are in inches (millimeters). This drawing is subject to change without notice. This package can be hermetically sealed with a metal lid. The terminals are gold plated. Falls within JEDEC MS-004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 IMPORTANT NOTICE Texas Instruments Incorporated and its subsidiaries (TI) reserve the right to make corrections, modifications, enhancements, improvements, and other changes to its products and services at any time and to discontinue any product or service without notice. Customers should obtain the latest relevant information before placing orders and should verify that such information is current and complete. All products are sold subject to TI’s terms and conditions of sale supplied at the time of order acknowledgment. TI warrants performance of its hardware products to the specifications applicable at the time of sale in accordance with TI’s standard warranty. Testing and other quality control techniques are used to the extent TI deems necessary to support this warranty. Except where mandated by government requirements, testing of all parameters of each product is not necessarily performed. TI assumes no liability for applications assistance or customer product design. Customers are responsible for their products and applications using TI components. To minimize the risks associated with customer products and applications, customers should provide adequate design and operating safeguards. TI does not warrant or represent that any license, either express or implied, is granted under any TI patent right, copyright, mask work right, or other TI intellectual property right relating to any combination, machine, or process in which TI products or services are used. Information published by TI regarding third-party products or services does not constitute a license from TI to use such products or services or a warranty or endorsement thereof. Use of such information may require a license from a third party under the patents or other intellectual property of the third party, or a license from TI under the patents or other intellectual property of TI. Reproduction of information in TI data books or data sheets is permissible only if reproduction is without alteration and is accompanied by all associated warranties, conditions, limitations, and notices. Reproduction of this information with alteration is an unfair and deceptive business practice. TI is not responsible or liable for such altered documentation. Resale of TI products or services with statements different from or beyond the parameters stated by TI for that product or service voids all express and any implied warranties for the associated TI product or service and is an unfair and deceptive business practice. TI is not responsible or liable for any such statements. Following are URLs where you can obtain information on other Texas Instruments products and application solutions: Products Applications Amplifiers amplifier.ti.com Audio www.ti.com/audio Data Converters dataconverter.ti.com Automotive www.ti.com/automotive DSP dsp.ti.com Broadband www.ti.com/broadband Interface interface.ti.com Digital Control www.ti.com/digitalcontrol Logic logic.ti.com Military www.ti.com/military Power Mgmt power.ti.com Optical Networking www.ti.com/opticalnetwork Microcontrollers microcontroller.ti.com Security www.ti.com/security Telephony www.ti.com/telephony Video & Imaging www.ti.com/video Wireless www.ti.com/wireless Mailing Address: Texas Instruments Post Office Box 655303 Dallas, Texas 75265 Copyright 2005, Texas Instruments Incorporated