TS3V902 STMICROELECTRONICS | Alldatasheet

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OPERATIONAL AMPLIFIER (WITH STANDBY POSITION) October 1997 .DEDICATED TO 3.3VOR BATTERY SUPPLY (specified at 3V and 5V) .RAIL TO RAIL INPUT AND OUTPUT VOLTAGE RANGES .STANDBY POSITION : REDUCED CON- SUMPTION (0.5µA) AND HIGH IMPEDANCE OUTPUTS .SINGLE (OR DUAL) SUPPLY OPERATION FROM 2.7V TO 16V .EXTREMELY LOW INPUT BIAS CURRENT : 1pA TYP .SPECIFIED FOR 600Ω AND 100Ω LOADS .LOW SUPPLY CURRENT : 200 µA/Ampli .SPICE MACROMODEL INCLUDED IN THIS SPECIFICATION PIN CONNECTIONS (top view) N DIP14 (Plastic Package)

DESCRIPTION

The TS3V902 is a RAIL TO RAIL dual CMOS operational amplifier designed to operate with sin- gle or dual supply voltage. The input voltage range Vicm includes the two supply rails VCC + and VCC -. The output reaches (VCC = 5V) :

  • VCC - +50mV V CC + -50mV with R L = 10kΩ
  • VCC - +350mV V CC + -400mV with RL = 600Ω This product offers a broad supply voltage operat- ing range from 2.7V to 16V and a supply current of only 200µA/amp. (VCC = 3V). Source and sink output current capability is typi- cally 40mA (at V CC = 3V), fixed by an internal limitation circuit. The TS3V902 can be put on STANDBY position (only 0.5µA and high impedance outputs). SGS-THOMSON is offering a quad op-amp with the same features : TS3V904. D SO14 (Plastic Micropackage) ORDER CODES Part Number Temperature Range Package ND TS3V902I/AI -40, +125 oC •• CCV +1 Non-inverting Input 2 Standby Output 1 N.C. Non-invertinginput 1 Inverting Input 1 N.C. N.C. -CCV N.C. Inverting Input 2 N.C. Output 2

Symbol Parameter Value Unit VCC Supply Voltage - (note 1) 18 V Vid Differential Input Voltage - (note 2) ±18 V Vi Input Voltage - (note 3) -0.3 to 18 V Iin Current on Inputs ±50 mA Io Current on Outputs ±130 mA Toper Operating Free Air Temperature Range TS3V902I/AI -40 to +125 oC Tstg Storage Temperature -65 to +150 oC Notes : 1. All voltage values, except differential voltage are with respect to network ground terminal. 2. Differential voltages are the non-inverting input terminal with respect to the inverting input terminal. 3. The magnitude of input and output voltages must never exceed V CC + +0.3V. Non-inverting Input Inve rting Input Interna l Vref Output VCC VCC Standby Standby Standby Standby SCHEMATIC DIAGRAM (1/2 TS3V902) V CC V CC TS 3V902 HIGH IMPEDANCE OUTPUT IN STANDBY MODE Vsby V CC V CC STBY OFFSTBY ON STANDBY POSITION OPERATING CONDITIONS Symbol Parameter Value Unit VCC Supply Voltage 2.7 to 16 V Vicm Common Mode Input Voltage Range V CC - -0.2 to VCC + +0.2 V TS3V902

ELECTRICAL CHARACTERISTICS

VCC + =3 V ,VCC - =0 V ,RL,CL connectedto VCC /2, Standby OFF, Tamb =2 5oC (unless otherwise specified) Symbol Parameter TS3V902I/AI UnitMin. Typ. Max. Vio Input Offset Voltage (Vic=V o =V CC /2) TS3V902 TS3V902A Tmin.≤ Tamb ≤ Tmax. TS3V902 TS3V902A mV DV io Input Offset Voltage Drift 5 µV/oC Iio Input Offset Current - (note 1) Tmin.≤ Tamb ≤ Tmax. 1 100 200 pA Iib Input Bias Current - (note 1) Tmin.≤ Tamb ≤ Tmax. 1 150 300 pA ICC Supply Current (per amplifier, AVCL = 1, no load) Tmin.≤ Tamb ≤ Tmax. 200 300 400 µA CMR Common Mode Rejection Ratio Vic= 0 to 3V, Vo = 1.5V 60 dB SVR Supply Voltage Rejection Ratio (VCC + = 2.7 to 3.3V, VO =V CC /2) 80 dB Avd Large Signal Voltage Gain (RL = 10kΩ ,V O = 1.2V to 1.8V) Tmin.≤ Tamb ≤ Tmax.

10 V/mV

VOH High Level Output Voltage (Vid= 1V) R L = 10kΩ R L = 600Ω R L = 100Ω Tmin.≤ Tamb ≤ Tmax. R L = 10kΩ R L = 600Ω 2.9 2.2 2.8 2.1 2.97 2.7 V VOL Low Level Output Voltage (Vid= -1V R L = 10kΩ R L = 600Ω R L = 100Ω Tmin.≤ Tamb ≤ Tmax. R L = 10kΩ R L = 600Ω 250 900 100 600 150 900 mV I o Output Short Circuit Current (Vid= ±1V) Source (V o =V CC Sink (V o =V CC mA GBP Gain Bandwidth Product (AVCL = 100, RL = 10kΩ ,C L = 100pF, f = 100kHz) 0.7 MHz SR Slew Rate (A VCL =1 ,RL = 10kΩ ,C L = 100pF, Vi= 1.3V to 1.7V) 0.5 V/ µs ∅ m Phase Margin 30 Degrees en Equivalent Input Noise Voltage (Rs = 100Ω , f = 1kHz) 30 nV √Hz VO1 /VO2 Channel Separation (f = 1kHz) 120 dB Note 1 :Maximum values including unavoidable inaccuracies of the industrial test. STANDBY MODE VCC + =3 V ,VCC - =0 V ,Tamb =2 5oC (unless otherwise specified) Symbol Parameter TS3V902I/AI Unit Min. Typ. Max. VinSBY/ON Pin 1 Threshold Voltage for STANDBY ON 1.2 V VinSBY/OFF Pin 1 Threshold Voltage for STANDBY OFF 1.2 V ICC SBY Total Consumption in Standby Position (STANDBY ON) 0.5 µA TS3V902

VCC + =5 V ,VCC - =0 V ,RL,CL connected to VCC /2, Standby OFF, Tamb =2 5oC (unless otherwise specified) Symbol Parameter TS3V902I/AI UnitMin. Typ. Max. Vio Input Offset Voltage (Vic=V o =V CC /2) TS3V902 TS3V902A Tmin.≤ Tamb ≤ Tmax. TS3V902 TS3V902A mV DV io Input Offset Voltage Drift 5 µV/oC Iio Input Offset Current - (note 1) Tmin.≤ Tamb ≤ Tmax. 1 100 200 pA Iib Input Bias Current - (note 1) Tmin.≤ Tamb ≤ Tmax. 1 150 300 pA ICC Supply Current (per amplifier, AVCL = 1, no load) Tmin.≤ Tamb ≤ Tmax. 230 350 450 µA CMR Common Mode Rejection Ratio Vic= 1.5 to 3.5V, Vo = 2.5V 85 dB SVR Supply Voltage Rejection Ratio (VCC + = 2.7 to 3.3V, VO =V CC /2) 80 dB Avd Large Signal Voltage Gain (RL = 10kΩ ,V O = 1.5V to 3.5V) Tmin.≤ Tamb ≤ Tmax.

30 V/mV

VOH High Level Output Voltage (Vid= 1V) R L = 10kΩ R L = 600Ω R L = 100Ω Tmin.≤ Tamb ≤ Tmax. R L = 10kΩ R L = 600Ω 4.85 4.2 4.8 4.1 4.95 4.6 3.7 V VOL Low Level Output Voltage (Vid= -1V) R L = 10kΩ R L = 600Ω R L = 100Ω Tmin.≤ Tamb ≤ Tmax. R L = 10kΩ R L = 600Ω 350 1400 100 680 150 900 mV Io Output Short Circuit Current (Vid= ±1V) Source (V o =V CC Sink (V o =V CC mA GBP Gain Bandwidth Product (AVCL = 100, RL = 10kΩ ,C L = 100pF, f = 100kHz) 0.8 MHz SR Slew Rate (A VCL =1 ,RL = 10kΩ ,C L = 100pF, Vi= 1V to 4V) 0.8 V/ µs ∅ m Phase Margin 30 Degrees Note 1 :Maximum values including unavoidable inaccuracies of the industrial test. STANDBY MODE VCC + =5 V ,VCC - =0 V ,Tamb =2 5oC (unless otherwise specified) Symbol Parameter TS3V902I/AI UnitMin. Typ. Max. VinSBY/ON Pin 1 Threshold Voltage for STANDBY ON 5.2 V VinSBY/OFF Pin 1 Threshold Voltage for STANDBY OFF 5.2 V ICC SBY Total Consumption in Standby Position (STANDBY ON) 0.5 µA TS3V902

-10 GAIN (dB) PHASE (Degrees) 135 180 FREQUENCY, f (Hz) PH A SE GAI N Phase Margin Ga in Bandwidth Product 61010 23 10 410 510 710 T= 2 5 C V= 1 0 V R= 1 0 k Ω C = 100pF A = 100 Standby OFF amb CC L L VCL Figure 5a :Open Loop Frequency Response and Phase Shift

10 GAIN (dB)

PHASE (Degrees) 135 180 FREQUENCY, f (Hz) PH A SE GA I N Phase Margin Gain Ba ndwidth Product 1010 23 10 410 510 T = 25 C V = 10V R= 6 0 0 Ω C = 100pF A = 100 St andbyOFF amb CC L L VCL Figure 5b :Open Loop Frequency Response and Phase Shift S UPP LY VOLTA GE, V (V)CC 04 8 1 2 1 6 1800 GAIN BANDW. PROD., GBP (kHz) T= 2 5 C R = 10k Ω C = 100pF Standby OFF amb L L 1400 1000 600 200 Figure 6a :Gain Bandwidth Product versus Supply Voltage SUPP LY VOLTAGE, V (V)CC 04 8 1 2 1 6 GAIN BANDW. PROD., GBP (kHz) T= 2 5 C R = 600 Ω C = 100pF Standby OFF amb L L 1800 1400 1000 600 200 Figure 6b :Gain bandwidthProduct versus Supply Voltage SUPPLY VOLTAGE, V (V)CC 04 8 1 2 1 6 PHASE MARGIN, m (Degrees) T= 2 5 C R= 1 0 k Ω C = 100pF Standby OFF amb L L φ Figure 7a :Phase Margin versus Supply Voltage OUTPUT VOLTAGE, V (V)OL V = 10VCC V = 16VCC OLOUTPUT CURRENT, I (mA) 14 28 42 56 70 am b id T= 2 5 C V = 100mV Sta ndby OFF Figure 4b :Low Level Output Voltage versus Low Level Output Current TS3V902

3 V 09 A I N

-40 Ct o+ 1 2 5 C OFFSET VOLTAGE SELECTION ”Nothing” A 10mV max. 5mV max. 12 DUAL- 200 µA/amp - 0.7MHz DUAL- 200 µA/amp - 0.7MHz + STANDBY position with High Impedance Outputs I PACKAGES DIP S 0 Ta pe & Reel N D DT T S FAMI LY

ORDERING INFORMATION

FREQUENCY (Hz) EQUIVALENT INPUT VOLTAGE NOISE (nV/VHz) =1 0 V =2 5 CTamb VCC = 100ΩR S Standby OFF Figure 8 :Input Voltage Noise versus Frequency SUP PLY VOLTAGE, V (V)CC 04 8 1 2 1 6 PHASE MARGIN, m (Degrees)φ T= 2 5 C R = 600 Ω C = 100pF Standby OFF amb L L Figure 7b :Phase Margin versus Supply Voltage STANDBY APPLICATION The two operators of the TS3V902 areboth put onSTANDBY. In this configuration (standby ON) : .The total consumptionof the circuit is considerablyreduced down to0.5µA (VCC = 3V). This standby consumption versus VCC curve is given figure 1b. .The both outputsare inhigh impedancestate. No output current can then be sourced or sinked by the device. The standby pin 1 should never stay unconnected. .The ”standby OFF”state, is reached when the pin 1 voltage ishigher than Vin SBY/OFF. .The ”standby ON”state is assured by a pin 1 voltagelower than Vin SBY/ON. (see electrical characteristics) TS3V902

Standard Linear Ics Macromodels, 1993. CONNECTIONS : * 1 INVERTING INPUT * 2 NON-INVERTING INPUT * 3 OUTPUT * 4 POSITIVE POWER SUPPLY * 5 NEGATIVE POWER SUPPLY * 6 STANDBY .SUBCKT TS3V902 132456 (analog) .MODEL MDTH D IS=1E-8 KF=6.563355E-14 CJO=10F * INPUT STAGE CIP 2 5 1.500000E-12 CIN 1 5 1.500000E-12 EIP 10 0 2 0 1 EIN 16 0 1 0 1 RIP 10 11 6.500000E+00 RIN 15 16 6.500000E+00 RIS 11 15 7.655100E+00 DIP 11 12 MDTH 400E-12 DIN 15 14 MDTH 400E-12 VOFP 12 13 DC 0.000000E+00 VOFN 13 14 DC 0 FPOL 13 0 VSTB 1 CPS 11 15 3.82E-08 DINN 17 13 MDTH 400E-12 VIN 17 5 -0.5000000e+00 DINR 15 18 MDTH 400E-12 VIP 4 18 -0.5000000E+00 FCP 4 5 VOFP 8.6E+00 FCN 5 4 VOFN 8.6E+00 ISTB0 5 4 900NA * AMPLIFYING STAGE FIP 0 19 VOFP 5.500000E+02 FIN 0 19 VOFN 5.500000E+02 RG1 19 120 5.087344E+05 GCOM1 120 5 POLY(1) 110 109 LEVEL=1 6.25E+11 RG2 121 19 5.087344E+05 GCOM2 121 4 POLY(1) 110 109 LEVEL=1 6.25E+11 CC 19 29 2.200000E-08 HZTP 30 29 VOFP 12.33E+02 HZTN 5 30 VOFN 12.33E+02 DOPM 19 22 MDTH 400E-12 DONM 21 19 MDTH 400E-12 HOPM 22 28 VOUT 3135 VIPM 28 4 150 HONM 21 27 VOUT 3135 VINM 5 27 150 EOUT 26 23 19 5 1 VOUT 23 5 0 ROUT 26 103 65 COUT 103 5 1.000000E-12 GCOM 103 3 POLY(1) 110 109 LEVEL=1 6.25E+11 * OUTPUT SWING DOP 19 68 MDTH 400E-12 VOP 4 25 1.924 HSCP 68 25 VSCP1 1E8 DON 69 19 MDTH 400E-12 VON 24 5 2.4419107 HSCN 24 69 VSCN1 1.5E8 VSCTHP 60 61 0.1375 DSCP1 61 63 MDTH 400E-12 VSCP1 63 64 0 ISCP 64 0 1.000000E-8 DSCP2 0 64 MDTH 400E-12 DSCN2 0 74 MDTH 400E-12 ISCN 74 0 1.000000E-8 VSCN1 73 74 0 DSCN1 71 73 MDTH 400E-12 VSCTHN 71 70 -0.75 ESCP 60 0 2 1 500 ESCN 70 0 2 1 -2000 * STAND BY RMI1 4 111 1E+12 RMI2 5 111 1E+12 RSTBIN 6 0 1E+12 ESTBIN 106 0 6 0 1 ESTBREF 106 107 111 0 1 DSTB1 107 108 MDTH 400E-12 VSTB 108 109 0 ISTB 109 0 40U RSTB 109 110 1 DSTB2 0 110 MDTH 400E-12 .ENDS Applies to : TS3V902I,AI .RAIL TO RAILINPUT AND OUTPUT VOLTAGE RANGES .STANDBY POSITION : REDUCED CON- SUMPTION (0.5µA) AND HIGH IMPEDANCE OUTPUTS .SINGLE (OR DUAL) SUPPLY OPERATION FROM 2.7V TO 16V(±1.35V to±8V) .EXTREMELY LOW INPUT BIAS CURRENT : 1pA TYP .LOW INPUT OFFSET VOLTAGE : 5mV max. .SPECIFIED FOR 600Ω AND 100Ω LOADS .LOW SUPPLY CURRENT : 200 µA/Ampli .SPEED : 0.7MHz - 0.5V/µs MACROMODEL TS3V902

VCC + = 5V,VCC - = 0V, RL,CL connected to VCC /2, standby off, Tamb =2 5oC (unless otherwise specified) Symbol Conditions Value Unit Vio 0m V Avd R L = 10kΩ 30 V/mV ICC No load, per operator 230 µA Vicm -0.2 to 5.2 V VOH R L = 10kΩ 4.95 V VOL R L = 10kΩ 50 mV Isink VO = 10V 60 mA Isource VO =0 V 6 0 m A GBP R L = 10kΩ, C L = 100pF 0.8 MHz SR R L = 10kΩ, C L = 100pF 0.8 V/ µs ∅ mR L = 10kΩ, C L = 100pF 30 Degrees ICC STBY VSTBY = 0V 500 nA TS3V902

PM-DIP14.EPS PACKAGE MECHANICAL DATA

14 PINS - PLASTIC DIP

Dimensions Millimeters Inches a1 0.51 0.020 B 1.39 1.65 0.055 0.065 b 0.5 0.020 b1 0.25 0.010 D 20 0.787 E 8.5 0.335 e 2.54 0.100 e3 15.24 0.600 F 7.1 0.280 i 5.1 0.201 L 3.3 0.130 Z 1.27 2.54 0.050 0.100 DIP14.TBL TS3V902

Information furnished is believed to be accurate and reliable. However, SGS-THOMSON Microelectronics assumes no responsibility for the consequences of use of such information nor for any infringement of patents or other rights of third parties which may result from its use. No license is granted by implication or otherwise under anypatent or patent rights of SGS-THOMSON Microelectronics. Specification mentioned in this publication are subject to change without notice. This publication supersedes and replaces all information previously supplied. SGS-THOMSON Microelectronics products are not authorized for use as critical components in life support devices or systems without express written approval of SGS-THOMSON Microelectronics.  1997 SGS-THOMSON Microelectronics – Printed in Italy – All Rights Reserved SGS-THOMSON Microelectronics GROUP OF COMPANIES Australia - Brazil - Canada - China - France - Germany - Hong Kong - Italy - Japan - Korea - Malaysia - Malta - Morocco The Netherlands - Singapore - Spain - Sweden - Switzerland - Taiwan - Thailand - United Kingdom - U.S.A. ORDER CODE : PM-SO14.EPS PACKAGE MECHANICAL DATA

14 PINS - PLASTIC MICROPACKAGE (SO)

Dimensions Millimeters Inches A 1.75 0.069 a1 0.1 0.2 0.004 0.008 a2 1.6 0.063 b 0.35 0.46 0.014 0.018 b1 0.19 0.25 0.007 0.010 C 0.5 0.020 c1 45 o (typ.) D 8.55 8.75 0.336 0.334 E 5.8 6.2 0.228 0.244 e 1.27 0.050 e3 7.62 0.300 F 3.8 4.0 0.150 0.157 G 4.6 5.3 0.181 0.208 L 0.5 1.27 0.020 0.050 M 0.68 0.027 S8 o (max.) SO14.TBL TS3V902