LM158 STMICROELECTRONICS | Alldatasheet

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Technical content

■ INTERNALLY FREQUENCY COMPENSATED ■ LARGE DC VOLTAGE GAIN: 100dB ■ WIDE BANDWIDTH (unity gain): 1.1MHz (temperature compensated) ■ VERY LOW SUPPLY CURRENT/OP (500µA) ESSENTIALLY INDEPENDENT OF SUPPLY VOLTAGE ■ LOW INPUT BIAS CURRENT: 20nA (temperature compensated) ■ LOW INPUT OFFSET VOLTAGE: 2mV ■ LOW INPUT OFFSET CURRENT: 2nA ■ INPUT COMMON-MODE VOLTAGE RANGE INCLUDES GROUND ■ DIFFERENTIAL INPUT VOLTAGE RANGE EQUAL TO THE POWER SUPPLY VOLTAGE ■ LARGE OUTPUT VOLTAGE SWING 0V TO (Vcc - 1.5V)

DESCRIPTION

These circuits consist of two independent, high gain, internally frequency compensated which were designed specifically to operate from a sin- gle power supply over a wide range of voltages. The low power supply drain is independent of the magnitude of the power supply voltage. Application areas include transducer amplifiers, dc gain blocks and all the conventional op-amp circuits which now can be more easily implement- ed in single power supply systems. For example, these circuits can be directly supplied with the standard +5V which is used in logic systems and will easily provide the required interface electron- ics without requiring any additional power supply. Inthe linear mode the input common-mode voltage range includes ground and the output voltage can also swing to ground, even though operated from only a single power supply voltage. ORDER CODE N = Dual in Line Package (DIP) D = Small Outline Package (SO) - also available in Tape & Reel (DT) S = Small Outline Package (miniSO) only available in Tape & Reel (DT) P = Thin Shrink Small Outline Package (TSSOP) - only available in Tape &Reel (PT) PIN CONNECTIONS (top view) Part Number Temperature Range Package NSD P Example : LM258N N DIP8 (Plastic Package) D & S SO8 & miniSO8 (Plastic Micropackage) P TSSOP8 (Thin Shrink Small Outline Package) 1 - Output 1 2 - Inverting input 3 - Non-inverting input 4 - V CC - 5 - Non-inverting input 2 6 - Inverting input 2 7 - Output 2 8 - VCC + - LM158,A-LM258,A LM358,A LOW POWER DUAL OPERATIONAL AMPLIFIERS July 2003

LM158,A-LM258,A-LM358,A SCHEMATIC DIAGRAM (1/2 LM158) ABSOLUTE MAXIMUM RATINGS Symbol Parameter LM158,A LM258,A LM358,A Unit VCC Supply voltage +/-16 or 32 V Vi Input Voltage -0.3 to +32 V Vid Differential Input Voltage +32 V Ptot Power Dissipation 1) 1. Power dissipation must be considered to ensure maximum junction temperature (Tj) is not exceeded. 500 mW Output Short-circuit Duration 2) 2. Short-circuits from the output to VCC can cause excessive heating if VCC > 15V. The maximum output current is approximately 40mA independent of the magnitude of VCC . Destructive dissipation can result from simultaneous short-circuit on all amplifiers. Infinite Iin Input Current 3) 3. This input current only exists when the voltage at any of the input leads is driven negative. It is due to the collector-base junction of the input PNP transistor becoming forward biased and thereby acting as input diodes clamps. In addition to this diode action, there is also NPN parasitic action on the IC chip. this transistor action can cause the output voltages of the Op-amps to go to the VCC voltage level (or to ground for a large overdrive) for the time duration than an input is driven negative. This is not destructive and normal output will set up again for input voltage higher than -0.3V. 50 mA Toper Opearting Free-air Temperature Range -55 to +125 -40 to +105 0 to +70 °C Tstg Storage Temperature Range -65 to +150 °C 6µA 4µA 100µA Q2 Q3 Q4Q1 Inverting input Non-inverting input Q8 Q9 Q10 Q11 Q12 50µA Q13 Output R SC V CC C C GND

LM158,A-LM258,A-LM358,A

ELECTRICAL CHARACTERISTICS

+ = +5V, VCC -= Ground, Vo = 1.4V, Tamb = +25°C (unless otherwise specified) Symbol Parameter LM158A-LM258A LM358A LM158-LM258 LM358 Unit Vio Input Offset Voltage - note 1) Tamb = +25°C LM158, LM258 LM158A Tmin ≤ Tamb ≤ Tmax LM158, LM258 mV Iio Input Offset Current Tamb = +25°C Tmin ≤ Tamb ≤ Tmax 21 0 23 0 nA Iib Input Bias Current - note 2) Tamb = +25°C Tmin ≤ Tamb ≤ Tmax 20 50 100 20 150 200 nA Avd Large Signal Voltage Gain VCC = +15V, RL = 2kΩ, Vo = 1.4V to 11.4V Tamb = +25°C Tmin ≤ Tamb ≤ Tmax 100 50

100 V/mV

Supply Voltage Rejection Ratio (Rs ≤ 10kΩ ) VCC + = 5V to 30V Tamb = +25°C Tmin ≤ Tamb ≤ Tmax 100 65 100 dB ICC Supply Current, all Amp, no load Tmin ≤ Tamb ≤ Tmax VCC = +5V Tmin ≤ Tamb ≤ Tmax VCC = +30V 0.7 1.2 0.7 1.2 mA Vicm Input Common Mode Voltage Range VCC = +30V - note 3) Tamb = +25°C Tmin ≤ Tamb ≤ Tmax VCC + -1.5 VCC + -2 VCC + -1.5 VCC + -2 V CMR Common Mode Rejection Ratio (Rs ≤ 10kΩ ) Tamb = +25°C Tmin ≤ Tamb ≤ Tmax 85 70 85 dB Isource Output Current Source VCC = +15V, Vo = +2V, Vid = +1V 20 40 60 20 40 60 mA Isink Output Sink Current (Vid = -1V) VCC = +15V, Vo = +2V VCC = +15V, Vo = +0.2V mA µA VOPP Output Voltage Swing ( RL = 2kΩ) Tamb = +25°C Tmin ≤ Tamb ≤ Tmax VCC + -1.5 VCC + -2 VCC + -1.5 VCC + -2

LM158,A-LM258,A-LM358,A VOH High Level Output Voltage (VCC + = 30V) Tamb = +25°C R L = 2kΩ Tmin ≤ Tamb ≤ Tmax Tamb = +25°C R L = 10kΩ Tmin ≤ Tamb ≤ Tmax V V OL Low Level Output Voltage (RL = 10kΩ ) Tamb = +25°C Tmin ≤ Tamb ≤ Tmax 52 0 52 0 mV SR Slew Rate VCC = 15V, Vi = 0.5 to 3V, RL = 2kΩ , C L = 100pF, unity Gain 0.3 0.6 0.3 0.6 V/µs GBP Gain Bandwidth Product VCC = 30V, f =100kHz,Vin = 10mV, RL = 2kΩ , C L = 100pF 0.7 1.1 0.7 1.1 MHz THD Total Harmonic Distortion f = 1kHz, Av = 20dB, RL = 2kΩ, Vo = 2Vpp, C L = 100pF, VO = 2Vpp 0.02 0.02 % en Equivalent Input Noise Voltage f = 1kHz, Rs = 100Ω, VCC = 30V 55 55 DV io Input Offset Voltage Drift 7 15 7 30 µV/°C DIIio Input Offset Current Drift 10 200 10 300 pA/°C Vo1/Vo2 Channel Separation - note 4) 1kHz ≤ f ≤ 20kHZ 120 120 dB 1. V o = 1.4V, Rs = 0Ω , 5V < VCC + < 30V, 0 < Vic < VCC + - 1.5V 2. The direction of the input current is out of the IC. This current is essentially constant, independent of the state of the output so no loading change exists on the input lines. 3. The input common-mode voltage of either input signal voltage should not be allowed to go negative by more than 0.3V. The upper end of the common-mode voltage range is VCC + - 1.5V, but either or both inputs can go to +32V without damage. 4. Due to the proximity of external components insure that coupling is not originating via stray capacitance between these external parts. This typically can be detected as this type of capacitance increases at higher frequences. Symbol Parameter LM158A-LM258A LM358A LM158-LM258 LM358 Unit nV Hz VOLTAGE GAIN (dB) OPEN LOOP FREQUENCY RESPONSE (NOTE 3) 1.0 10 100 1k 10k 100k 1M 10M VCC = +10 to + 15V & FREQUENCY (Hz) 10M /C87 VI VCC/2 VCC = 30V & 0.1/C109F VCC VO -55°C Tamb +125°C 140 120 100 -55°C Tamb +125°C LARGE SIGNAL FREQUENCY RESPONSE FREQUENCY (Hz) 1k 10k 100k 1M OUTPUT SWING (Vpp) +7V 2k /C87 1k /C87 100k /C87 +15V VO VI

LM158,A-LM258,A-LM358,A INPUT VOLTAGE (V) OUTPUT VOLTAGE (V) VOLAGE FOLLOWER PULSE RESPONSE 01 0 2 0 3 0 4 0 TIME (/C109s) RL 2 k /C87/C32 VCC = +15V OUTPUT VOLTAGE (mV) VOLTAGE FOLLOWER PULSSE RESPONSE (SMALL SIGNAL) 0 1 2 3 4 5 6 7 8 Input Tamb = +25°C VCC = 30 V Output eO el 50pF TIME (/C109s) 500 450 400 350 300

250 INPUT CURRENT (mA)

INPUT CURRENT (Note 1) -55 -35 -15 5 25 45 65 85 105 125 VI = 0 V VCC = +30 V VCC = +15 V VCC = +5 V TEMPERATURE (°C) OUTPUT CHARACTERISTICS OUTPUT SINK CURRENT (mA) 0,001 0,01 0,1 1 10 100 OUTPUT VOLTAGE (V) VCC = +5V VCC = +15V VCC = +30V IO VO Tamb = +25°C vcc/2 vcc 0.1 0.01 OUTPUT VOLTAGE REFERENCED TO VCC+ (V) OUTPUT CHARACTERISTICS 0,01 0,1 1 10 1000,001 Independent of VCC Tamb = +25°C VCC VO IO VCC /2 OUTPUT SOURCE CURRENT (mA) OUTPUT CURRENT (mA) CURRENT LIMITING (Note 1) IO TEMPERATURE (°C) -55 -35 -15 5 25 45 65 85 105 125

LM158,A-LM258,A-LM358,A INPUT VOLTAGE (V) INPUT VOLTAGE RANGE 0 5 10 15 POWER SUPPLY VOLTAGE (±V) Négative Positive 0 10 20 30 40 POSITIVE SUPPLY VOLTAGE (V) VOLTAGE GAIN (dB) 160 120 LR = 20k /C87 LR = 2k /C87 0 10 20 30 POSITIVE SUPPLY VOLTAGE (V) VOLTAGE GAIN (dB) 160 120 LR = 20k /C87 LR = 2k /C87 SUPPLY CURRENT (mA) SUPPLY CURRENT 01 02 0 3 0 Tamb = -55°C VCC mA ID Tamb = 0°C to +125°C POSITIVE SUPPLY VOLTAGE (V) 0 10 20 30 POSITIVE SUPPLY VOLTAGE (V) INPUT CURRENT (nA) 100 ambT = +25°C -55-35-15 5 25 45 65 85 105 125 TEMPERATURE (°C) GAIN BANDWIDTH PRODUCT (MHz) CCV = 15V 1.5 1.35 1.2 1.05 0.9 0.75 0.6 0.45 0.3 0.15

LM158,A-LM258,A-LM358,A TYPICAL APPLICATIONS (single supply voltage) Vcc = +5Vdc AC COUPLED INVERTING AMPLIFIER NON-INVERTING DC AMPLIFIER AC COUPLED NON-INVERTING AMPLIFIER DC SUMMING AMPLIFIER -55-35-15 5 25 45 65 85 105 125 TEMPERATURE (°C) POWER SUPPLY REJECTION RATIO (dB) SVR 115 110 105 100 -55-35-15 5 25 45 65 85 105 125 TEMPERATURE (°C) COMMON MODE REJECTION RATIO (dB) 115 110 105 100 LM158 0 2VPP R 10k/c87 L Co eo R 6.2k/c87 B R 100k/c87 f 10k/c87C I eI VCC 100k/c87 10/c109F 100k/c87 A= - R R1V f (as shown A = -10)V 10k/c87 1M /c87 LM158 10k/c87 eI eO +5V e O (V) (mV)0 A V =1+ R2 (As shown = 101)A V LM158 0 2VPP R 10k/c87 L Co eo R 6.2k/c87 B 0.1/c109F eI VCC (as shown A = 11)V A =1+ R2 R1V 100k/c87 1M /c87 C I 1M /c87 R4 100k/c87 100k/c87 10/c109F LM158 eO e 4 e 3 e 2 e 1 100k/c87 100k/c87 100k/c87 100k/c87 100k/c87 100k/c87 eo = e1 + e2 - e3 - e4 where (e1 + e2) ≥ (e3 + e4) to keep eo ≥ 0V

LM158,A-LM258,A-LM358,A HIGH INPUT Z, DC DIFFERENTIAL AMPLIFIER HIGH INPUT Z ADJUSTABLE GAIN DC INSTRUMENTATION AMPLIFIER USING SYMMETRICAL AMPLIFIERS TO REDUCE INPUT CURRENT LOW DRIFT PEAK DETECTOR ACTIVE BAND-PASS FILTER 100k/c87 100k/c87 100k/c87 100k/c87 +V2 +V1 Vo LM158 1/2 LM158 if R1 = R5 and R3 = R4 = R6 = R7 As shown eo = 101 (e2 + e1) 2R 1 100k/c87 eO LM158 100k/c87 e 1 100k/c87 100k/c87 100k/c87 e 2 2k/c87 Gain adjust 100k/c87 LM158 LM158 if R1 = R5 and R3 = R4 = R6 = R7 As shown eo = 101 (e2 + e1) 2R 1 LM158 IB 2N 929 0.001/c109F IB 3M /c87 IB eoII e I IB IB Input current compensation 1.5M/c87 LM158 IB 2N 929 0.001/c109F IB 3M /c87 IB Input current compensation eo IB e I LM158 Zo ZI C 1/c109F 2IB R 1M /c87 2IB LM158 LM158 LM158 100k/c87 10/c109F 100k/c87 470k/c87 330pF Vo VCC 470k/c87 330pF 10M /c87 100k/c87 100k/c87 +V1 100k/c87 LM158 LM158

LM158,A-LM258,A-LM358,A PACKAGE MECHANICAL DATA

8 PINS - PLASTIC DIP

Dim. Millimeters Inches A 3.32 0.131 a1 0.51 0.020 B 1.15 1.65 0.045 0.065 b 0.356 0.55 0.014 0.022 b1 0.204 0.304 0.008 0.012 D 10.92 0.430 E 7.95 9.75 0.313 0.384 e 2.54 0.100 e3 7.62 0.300 e4 7.62 0.300 F 6.6 0260 i 5.08 0.200 L 3.18 3.81 0.125 0.150 Z 1.52 0.060

LM158,A-LM258,A-LM358,A PACKAGE MECHANICAL DATA

8 PINS - PLASTIC MICROPACKAGE ( miniSO )

Dim. Millimeters Inches A 1.100 0.043 e 0.650 0.026 L1 0.950 0.037 k 0 d3 d6 d0 d3 d6 d ccc 0.100 0.004 0,25 mm .010 inch GAGE PLANE Cccc C PLANE SEATING EA D b e L k c PIN 1 IDENTIFICATION

LM158,A-LM258,A-LM358,A PACKAGE MECHANICAL DATA

8 PINS - PLASTIC MICROPACKAGE (SO)

Dim. Millimeters Inches A 1.75 0.069 a1 0.1 0.25 0.004 0.010 a2 1.65 0.065 a3 0.65 0.85 0.026 0.033 b 0.35 0.48 0.014 0.019 b1 0.19 0.25 0.007 0.010 C 0.25 0.5 0.010 0.020 c1 45° (typ.) D 4.8 5.0 0.189 0.197 E 5.8 6.2 0.228 0.244 e 1.27 0.050 e3 3.81 0.150 F 3.8 4.0 0.150 0.157 L 0.4 1.27 0.016 0.050 M 0.6 0.024 S 8° (max.) b A s L C E D M 8 5 1 4 F

LM158,A-LM258,A-LM358,A PACKAGE MECHANICAL DATA

8 PINS - THIN SHRINK SMALL OUTLINE PACKAGE (TSSOP)

Dim. Millimeters Inches A 1.20 0.05 A1 0.05 0.15 0.01 0.006 b 0.19 0.30 0.007 0.15 c 0.09 0.20 0.003 0.012 E 6.40 0.252 e 0.65 0.025 k 0° 8° 0° 8° L1 1.000 0.039 C L 8 5 c 0.25mm .010 inch GAGE PLANE k L L1 E SEATING PLANE A D b PIN 1 IDENTIFICATION e 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 publication 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. The ST logo is a registered trademark of STMicroelectronics © 2003 STMicroelectronics - All Rights Reserved STMicroelectronics GROUP OF COMPANIES Australia - Brazil - China - Finland - France - Germany - Hong Kong - India - Italy - Japan - Malaysia - Malta - Morocco Singapore - Spain - Sweden - Switzerland - United Kingdom http://www.st.com