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(R) LF153 LF253 - LF353 WIDE BANDWIDTH DUAL J-FET OPERATIONAL AMPLIFIERS .LOWPOWERCONSUMPTI .WI .LOWI .OUTPUTSHORT.HI .I .LATCHUPFREEOPERATI .HI DESCRIPTION ON DE COMMON-MODE (UP TO VCC+) AND DIFFERENTIAL VOLTAGE RANGE NPUT BIAS AND OFFSET CURRENT CIRCUIT PROTECTION GH INPUT IMPEDANCE J-FET INPUT STAGE NTERNAL FREQUENCY COMPENSATION ON GH SLEW RATE : 16V/s (typ) N DIP8 (Plastic Package) D SO8 (Plastic Micropackage) The LF353 are high speed J-FET input dual operational amplifiers incorporating well matched, high voltageJ-FET andbipolartransistorsin a monolithicintegrated circuit. The devicesfeaturehigh slew rates, low input bias and offset currents, and low offset voltage temperature coefficient. PIN CONNECTIONS (top view) ORDER CODES Part Number LF353 LF253 LF153 Temperature 0 C, +70 C -40oC, +105oC -55 C, +125 C o o o o Package N * * * D * * * 1 2 3 4 + + 8 7 6 5 1 2 3 4 5 6 7 8 - Output 1 - Inverting input 1 - Non-inverting input 1 - VCC- Non-inverting input 2 - Inverting input 2 -Output 2 + - VCC June 1998 1/9 LF153 - LF253 - LF353 SCHEMATIC DIAGRAM (each amplifier) VCC input Non-inverting input Inverting 100 200 Output 100 30k 8.2k 1.3 k VCC Offs e t Null1 35k 1.3k 35k 100 Offse t Null2 ABSOLUTE MAXIMUM RATINGS Symbol VCC Vi Vid Ptot Toper Supply Voltage - (note 1) Input Voltage - (note 3) Differential Input Voltage - (note 2) Power Dissipation Output Short-circuit Duration - (note 4) Operating Free Air Temperature Range LF353 LF253 LF153 Parameter Value 18 15 30 680 Infinite 0 to 70 -40 to 105 -55 to 125 -65 to 150 o Unit V V V mW C Tstg Notes : Storage Temperature Range o C 1. All voltage values, except differential voltage, are with respect to the zero reference level (ground) of the supply voltages where the zero reference level is the midpoint between VCC+ and VCC-. 2. Differential voltages are at the non-inverting input terminal with respect to the inverting input terminal. 3. The magnitude of the input voltage must never exceed the magnitude of the supply voltage or 15 volts, whichever is less. 4. The output may be shorted to ground or to either supply. Temperature and /or supply voltages must be limited to ensure that the dissipation rating is not exceeded. 2/9 LF153 - LF253 - LF353 ELECTRICAL CHARACTERISTICS VCC = 15V, Tamb = 25oC (unless otherwise specified) Symbol Vio Parameter Input Offset Voltage (R S = 10k) o Tamb = 25 C Tmin. Tamb Tmax. Input Offset Voltage Drift Input Offset Current * Tamb = 25oC Tmin. Tamb Tmax. Input Bias Current * o Tamb = 25 C Tmin. Tamb Tmax. Large Signal Voltage Gain (RL = 2k, VO = 10V) o Tamb = 25 C Tmin. Tamb Tmax. Supply Voltage Rejection Ratio (R S = 10k) o Tamb = 25 C Tmin. Tamb Tmax. Supply Current (no load) o Tamb = 25 C Tmin. Tamb Tmax. Input Common Mode Voltage Range Common Mode Rejection Ratio (RS = 10k) o Tamb = 25 C Tmin. Tamb Tmax. Output Short-circuit Current o Tamb = 25 C Tmin. Tamb Tmax. Output Voltage Swing Tamb = 25oC Tmin. Tamb Tmax. SR tr KOV GBP Ri THD en m VO1/VO2 RL RL RL RL = = = = 2k 10k 2k 10k 11 50 25 80 80 LF153 - LF253 - LF353 Min. Typ. 3 10 5 100 4 200 20 Max. 10 13 V/oC pA nA pA nA V/mV 200 dB 86 mA 1.4 +15 -12 86 mA 10 10 10 12 10 12 12 40 60 60 V 12 13.5 3.2 3.2 V dB 70 70 Unit mV DV io Iio Iib 20 Avd SVR ICC Vicm CMR Ios VOPP Slew Rate (Vi = 10V, R L = 2k, C L = 100pF, T amb = 25oC, unity gain) Rise Time o (Vi = 20mV, RL = 2k, CL = 100pF, Tamb = 25 C, unity gain) Overshoot o (Vi = 20mV, RL = 2k, CL = 100pF, Tamb = 25 C, unity gain) Gain Bandwidth Product o (f = 100kHz, Tamb = 25 C, V in = 10mV, RL = 2k, CL = 100pF) Input Resistance Total Harmonic Distortion (f = 1kHz, AV = 20dB, R L = 2k, o CL = 100pF, Tamb = 25 C, VO = 2VPP) Equivalent Input Noise Voltage (f = 1kHz, Rs = 100) Phase Margin Channel Separation (AV = 100, Tamb = 25 C) o V/s 16 0.1 10 MHz 2.5 4 1012 0.01 15 45 120 nV Hz Degrees dB % s % * The input bias currents are junction leakage currents which approximately double for every 10oC increase in the junction temperature. 3/9 LF153 - LF253 - LF353 MAXIMUM PEAK-TO-PEAK OUTPUT VOLTAGE VERSUS FREQUENCY MAXIMUMPEAK-TO-PEAK OUTPUT VOLTAGE (V) MAXIMUM PEAK-TO-PEAK OUTPUT VOLTAGE VERSUS FREQUENCY MAXIMUMPEAK-TO-PEAK OUTPUT VOLTAGE (V) 30 VCC = 15V 25 20 VCC = 10V 15 10 5 0 100 1K 10K 100K 1M 10M VCC = 5V R L= 2k Tamb = +25 C See Figure 2 30 25 20 15 10 5 0 100 1K 10K 100K VCC = 5V V CC = 15V V CC = 10V R L= 10k T amb = +25 C S e e F igure 2 1M 10M FREQUENCY (Hz) FREQUENCY (Hz) MAXIMUM PEAK-TO-PEAK OUTPUT VOLTAGE VERSUS FREQUENCY MAXIMUMPEAK-TO-PEAK OUTPUT VOLTAGE (V) MAXIMUM PEAK-TO-PEAK OUTPUT VOLTAGE VERSUS FREE AIR TEMP. 30 MAXIMUMPEAK-TO-PEAK OUTPUT VOLTAGE (V) 30 25 20 Tamb = +25 C 25 20 15 VCC = 15V R L = 2k Se e Figure 2 R 15 10 5 0 -75 -50 -25 0 25 50 L L = 10k Ta mb = -55 C 10 5 0 R = 2k V CC = 15V Ta mb = +125 C 10k 40k 100k 400k 1M 4M 10M S e e Figu re 2 75 -50 125 TEMPER ATURE ( C) FREQUENCY (Hz) MAXIMUM PEAK-TO-PEAK OUTPUT VOLTAGE VERSUS LOAD RESISTANCE MAXIMUM PEAK-TO-PEAK OUTPUT VOLTAGE VERSUS SUPPLY VOLTAGE MAXIMUMPEAK-TO-PEAK OUTPUT VOLTAGE (V) MAXIMUMPEAK-TO-PEAK OUTPUT VOLTAGE (V) 30 25 20 15 10 5 0 0.1 0.2 0.4 0.7 1 2 4 7 10 S e e Figu re 2 VCC= 15V Ta mb= +25 C 30 25 20 15 10 5 0 2 4 6 8 10 12 14 16 R L = 10 k Ta mb = +25 C LOAD RESISTANCE (k) S UPP LY VOLTAGE (V) 4/9 LF153 - LF253 - LF353 INPUT BIAS CURRENT VERSUS FREE AIR TEMPERATURE LARGE SIGNAL DIFFERENTIAL VOLTAGE AMPLIFICATION VERSUS FREE AIR TEMPERATURE INPUT BIAS CURRENT (nA) 1 00 DIFFERENTIAL VOLTAGE AMPLIFICATION (V/V) 1000 VCC = 10 1 0 .1 1 5V 400 200 100 40 20 10 4 2 1 VCC = 15V VO = 10V R L = 2k -75 -50 -25 0 25 50 75 100 125 0 .01 -50 -25 0 25 50 75 10 0 125 TEMPERATURE ( C) TEMPERATURE ( C ) LARGE SIGNAL DIFFERENTIAL VOLTAGE AMPLIFICATION AND PHASE SHIFT VERSUS FREQUENCY TOTAL POWER DISSIPATION VERSUS FREE AIR TEMPERATURE TOTAL POWER DISSIPATION (mV) 100 P HASE S HIFT (right sca le) DIFFERENTIAL VOLTAGE AMPLIFICATION (le ft s ca le ) 180 10 1 100 R L = 2k C L = 100pF V CC = 15V T a mb = +125 C 1K 10K 100K 1M 10M FREQUENCY (Hz) 90 0 250 225 V CC +/-15V 200 No s igna l No loa d 175 150 100 75 50 25 0 -75 -50 -25 0 DIFFERENTIAL VOLTAGE AMPLIFICATION(V/V) 25 50 75 100 125 TEMPERATURE ( C) SUPPLY CURRENT PER AMPLIFIER VERSUS FREE AIR TEMPERATURE 2.0 1.8 1.6 1.4 1.2 1.0 0.8 0.6 0.4 0.2 0 -75 -50 SUPPLY CURRENT PER AMPLIFIER VERSUS SUPPLY VOLTAGE 2.0 1.8 1.6 1.4 1.2 1.0 0.8 0.6 0.4 0.2 0 0 -25 0 25 50 75 10 0 125 SUPPLY CURRENT (mA) SUPPLY CURRENT (mA) VCC = 15V No signa l No loa d Ta mb= +25 C No s ignal No loa d 2 4 6 8 10 12 14 16 TEMPERATURE ( C) S UPPLY VOLTAGE (V) 5/9 LF153 - LF253 - LF353 COMMON MODE REJECTION RATIO VERSUS FREE AIR TEMPERATURE COMMON MODE MODE REJECTION RATIO (dB) VOLTAGE FOLLOWER LARGE SIGNAL PULSE RESPONSE INPUT AND OUTPUT VOLTAGES (V) 89 88 87 86 85 84 83 -75 -50 -25 0 25 50 75 100 125 R L = 10 k VCC = 15V 6 4 2 0 -2 -4 -6 0 VCC = 15V R L = 2 k C L= 100pF Ta mb = +25 C OUTPUT INPUT 0.5 1 1.5 2 2.5 3 3.5 TEMPERATURE ( C) TIME (s ) OUTPUT VOLTAGE VERSUS ELAPSED TIME 28 24 OVERSHOOT EQUIVALENT INPUT NOISE VOLTAGE VERSUS FREQUENCY EQUIVALENT INPUT NOISE VOLTAGE (nV/VHz) 70 60 50 40 30 20 10 0 10 40 100 400 1k 4k 10k 40k 100k FREQUENCY (Hz) VCC = 15V A V = 10 R S = 100 Ta mb = +25 C OUTPUT VOLTAGE (mV) 20 16 12 8 4 0 -4 10% 90% tr 0 TIME (s ) VCC= 15V R L= 2k T mb = +25 C a 0.5 0.6 0.7 0.1 0.2 0.3 0.4 TOTAL HARMONIC DISTORTION VERSUS FREQUENCY TOTAL HARMONIC DISTORTION (%) 1 0.4 0.1 0.04 0.01 0.004 0.001 100 VV = = 15V 15V CC CC AV = = 1 AV 1 VV(rms)= = 6V 6V O O (rms) +25 Ta mb = = +25CC Ta mb 400 1k 4k 10k 40k 100k FREQUE NCY (Hz) 6/9 LF153 - LF253 - LF353 PARAMETER MEASUREMENT INFORMATION Figure 1 : Voltage Follower Figure 2 : Gain-of-10 Inverting Amplifier 10k LF153 1k 1/2 eI LF153 eo 1/2 eo RL eI CL= 100pF RL = 2k CL= 100pF TYPICAL APPLICATIONS QUADRUPLE OSCILLATOR 1N 4148 18pF 18pF 1/2 18k -15V 88.4k 1/2 LF353 88.4k 18pF 6 s in t LF353 18k 88.4k 1N 4148 +15V 7/9 LF153 - LF253 - LF353 PACKAGE MECHANICAL DATA 8 PINS - PLASTIC DIP Dimensions A a1 B b b1 D E e e3 e4 F i L Z Min. 0.51 1.15 0.356 0.204 7.95 Millimeters Typ. 3.32 Max. Min. 0.020 0.045 0.014 0.008 0.313 Inches Typ. 0.131 Max. 1.65 0.55 0.304 10.92 9.75 2.54 7.62 7.62 6.6 5.08 3.81 1.52 0.065 0.022 0.012 0.430 0.384 0.100 0.300 0.300 0260 0.200 0.150 0.060 3.18 0.125 8/9 DIP8.TBL PM-DIP8.EPS LF153 - LF253 - LF353 PACKAGE MECHANICAL DATA 8 PINS - PLASTIC MICROPACKAGE (SO) Dimensions A a1 a2 a3 b b1 C c1 D E e e3 F L M S Min. 0.1 0.65 0.35 0.19 0.25 4.8 5.8 Millimeters Typ. Max. 1.75 0.25 1.65 0.85 0.48 0.25 0.5 45 (typ.) 5.0 6.2 o Min. 0.004 0.026 0.014 0.007 0.010 0.189 0.228 Inches Typ. Max. 0.069 0.010 0.065 0.033 0.019 0.010 0.020 0.197 0.244 1.27 3.81 3.8 0.4 4.0 1.27 0.6 8 (max.) o 0.050 0.150 0.150 0.016 0.157 0.050 0.024 Information furnished is believed to be accurate and reliable. However, STMicroelectronics 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 any patent or patent rights of STMicroelectronics. Specifications mentioned in this pub lication are subject to change without notice. This publication supersedes and replaces all information previously supplied. STMicroelectronics products are not authorized for use as critical components in life support devices or systems without express written approval of STMicroelectronics. (c) The ST log o is a trademark of STMicroelectronics (c) 1998 STMicroelectronics - Printed in Italy - All Rights Reserved STMicroelectronics GROUP OF COMPANIES Australia - Brazil - Canada - China - France - Germany - Italy - Japan - Korea - Malaysia - Malta - Mexico - Morocco The Netherlands - Singapore - Spain - Sweden - Switzerland - Taiwan - Thailand - United Kingdo m - U.S.A. ORDER CODE : 9/9 SO8.TBL PM-SO8.EPS |
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