LM358N/NOPB [TI]

双路、32V、1MHz 运算放大器 | P | 8 | 0 to 70;
LM358N/NOPB
型号: LM358N/NOPB
厂家: TEXAS INSTRUMENTS    TEXAS INSTRUMENTS
描述:

双路、32V、1MHz 运算放大器 | P | 8 | 0 to 70

放大器 运算放大器 放大器电路
文件: 总33页 (文件大小:1727K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
LM158-N, LM258-N, LM2904-N, LM358-N  
www.ti.com  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
LM158/LM258/LM358/LM2904 Low Power Dual Operational Amplifiers  
Check for Samples: LM158-N, LM258-N, LM2904-N, LM358-N  
1
FEATURES  
ADVANTAGES  
2
Available in 8-Bump DSBGA Chip-  
Sized Package, (See AN-1112 (SNVA009))  
Two Internally Compensated Op Amps  
Eliminates Need for Dual Supplies  
Internally Frequency Compensated for Unity  
Gain  
Allows Direct Sensing Near GND and VOUT  
Also Goes to GND  
Large DC Voltage Gain: 100 dB  
Compatible with All Forms of Logic  
Wide Bandwidth (Unity Gain): 1 MHz  
(Temperature Compensated)  
Power Drain Suitable for Battery Operation  
Wide Power Supply Range:  
DESCRIPTION  
The LM158 series consists of two independent, high  
gain, internally frequency compensated operational  
amplifiers which were designed specifically to operate  
from a single power supply over a wide range of  
voltages. Operation from split power supplies is also  
possible and the low power supply current drain is  
independent of the magnitude of the power supply  
voltage.  
Single Supply: 3V to 32V  
Or Dual Supplies: ±1.5V to ±16V  
Very Low Supply Current Drain (500  
μA)—Essentially Independent of Supply  
Voltage  
Low Input Offset Voltage: 2 mV  
Input Common-Mode Voltage Range Includes  
Ground  
Application areas include transducer amplifiers, dc  
gain blocks and all the conventional op amp circuits  
which now can be more easily implemented in single  
power supply systems. For example, the LM158  
series can be directly operated off of the standard  
+5V power supply voltage which is used in digital  
systems and will easily provide the required interface  
electronics without requiring the additional ±15V  
power supplies.  
Differential Input Voltage Range Equal to the  
Power Supply Voltage  
Large Output Voltage Swing  
UNIQUE CHARACTERISTICS  
In the Llinear 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.  
The LM358 and LM2904 are available in a chip sized  
package (8-Bump DSBGA) using TI's DSBGA  
package technology.  
The Unity Gain Cross Frequency is  
Temperature Compensated.  
The Input Bias Current is also Temperature  
Compensated.  
1
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.  
2
All trademarks are the property of their respective owners.  
PRODUCTION DATA information is current as of publication date.  
Products conform to specifications per the terms of the Texas  
Instruments standard warranty. Production processing does not  
necessarily include testing of all parameters.  
Copyright © 2000–2013, Texas Instruments Incorporated  
LM158-N, LM258-N, LM2904-N, LM358-N  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
www.ti.com  
Voltage Controlled Oscillator (VCO)  
These devices have limited built-in ESD protection. The leads should be shorted together or the device placed in conductive foam  
during storage or handling to prevent electrostatic damage to the MOS gates.  
2
Submit Documentation Feedback  
Copyright © 2000–2013, Texas Instruments Incorporated  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
www.ti.com  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
ABSOLUTE MAXIMUM RATINGS(1)(2)  
LM158/LM258/LM358  
LM2904  
LM158A/LM258A/LM3  
58A  
Supply Voltage, V+  
Differential Input Voltage  
Input Voltage  
32V  
32V  
26V  
26V  
0.3V to +32V  
0.3V to +26V  
Power Dissipation(3)  
PDIP (P)  
830 mW  
550 mW  
530 mW  
435mW  
830 mW  
530 mW  
TO-99 (LMC)  
SOIC (D)  
DSBGA (YPB)  
Output Short-Circuit to GND (One  
Amplifier)(4)  
Input Current (VIN < 0.3V)(5)  
Operating Temperature Range  
LM358  
V+ 15V and TA = 25°C  
Continuous  
Continuous  
50 mA  
50 mA  
0°C to +70°C  
25°C to +85°C  
55°C to +125°C  
65°C to +150°C  
40°C to +85°C  
LM258  
LM158  
Storage Temperature Range  
Lead Temperature, PDIP (P)  
(Soldering, 10 seconds)  
Lead Temperature, TO-99 (LMC)  
(Soldering, 10 seconds)  
Soldering Information  
PDIP Package (P)  
65°C to +150°C  
260°C  
260°C  
300°C  
300°C  
Soldering (10 seconds)  
SOIC Package (D)  
260°C  
260°C  
Vapor Phase (60 seconds)  
Infrared (15 seconds)  
ESD Tolerance(6)  
215°C  
220°C  
250V  
215°C  
220°C  
250V  
(1) Refer to RETS158AX for LM158A military specifications and to RETS158X for LM158 military specifications.  
(2) If Military/Aerospace specified devices are required, please contact the TI Sales Office/Distributors for availability and specifications.  
(3) For operating at high temperatures, the LM358/LM358A, LM2904 must be derated based on a +125°C maximum junction temperature  
and a thermal resistance of 120°C/W for PDIP, 182°C/W for TO-99, 189°C/W for SOIC package, and 230°C/W for DSBGA, which  
applies for the device soldered in a printed circuit board, operating in a still air ambient. The LM258/LM258A and LM158/LM158A can be  
derated based on a +150°C maximum junction temperature. The dissipation is the total of both amplifiers—use external resistors, where  
possible, to allow the amplifier to saturate or to reduce the power which is dissipated in the integrated circuit.  
(4) Short circuits from the output to V+ can cause excessive heating and eventual destruction. When considering short circuits to ground,  
the maximum output current is approximately 40 mA independent of the magnitude of V+. At values of supply voltage in excess of +15V,  
continuous short-circuits can exceed the power dissipation ratings and cause eventual destruction. Destructive dissipation can result  
from simultaneous shorts on all amplifiers.  
(5) This input current will only exist when the voltage at any of the input leads is driven negative. It is due to the collector-base junction of  
the input PNP transistors becoming forward biased and thereby acting as input diode clamps. In addition to this diode action, there is  
also lateral NPN parasitic transistor action on the IC chip. This transistor action can cause the output voltages of the op amps to go to  
the V+voltage level (or to ground for a large overdrive) for the time duration that an input is driven negative. This is not destructive and  
normal output states will re-establish when the input voltage, which was negative, again returns to a value greater than 0.3V (at 25°C).  
(6) Human body model, 1.5 kΩ in series with 100 pF.  
Copyright © 2000–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
3
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
www.ti.com  
ELECTRICAL CHARACTERISTICS  
V+ = +5.0V, unless otherwise stated  
Parameter  
Conditions  
LM158A  
LM358A  
LM158/LM258  
Units  
Min Typ Max Min Typ Max Min Typ Max  
Input Offset Voltage  
Input Bias Current  
(1), TA = 25°C  
1
2
2
3
2
5
mV  
nA  
IIN(+) or IIN(), TA = 25°C,  
VCM = 0V,(2)  
20  
50  
45  
100  
45  
150  
Input Offset Current  
Input Common-Mode  
Voltage Range  
I
IN(+) IIN(), VCM = 0V, TA = 25°C  
2
10  
5
30  
3
30  
nA  
V+ = 30V,(3)  
0
V+1.5  
0
V+1.5  
0
V+1.5  
V
(LM2904, V+ = 26V), TA = 25°C  
Over Full Temperature Range  
RL = on All Op Amps  
V+ = 30V (LM2904 V+ = 26V)  
V+ = 5V  
Supply Current  
1
2
1
2
1
2
mA  
mA  
0.5  
1.2  
0.5  
1.2  
0.5  
1.2  
(1)  
V
O 1.4V, RS = 0Ω with V+ from 5V to 30V; and over the full input common-mode range (0V to V+ 1.5V) at 25°C. For LM2904, V+ from  
5V to 26V.  
(2) The direction of the input current is out of the IC due to the PNP input stage. 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 (at 25°C). The  
upper end of the common-mode voltage range is V+ 1.5V (at 25°C), but either or both inputs can go to +32V without damage (+26V for  
LM2904), independent of the magnitude of V+.  
ELECTRICAL CHARACTERISTICS  
V+ = +5.0V, unless otherwise stated  
Parameter  
Conditions  
LM358  
Typ  
2
LM2904  
Typ  
Units  
Min  
Max  
Min  
Max  
Input Offset Voltage  
Input Bias Current  
See(1) , TA = 25°C  
7
2
7
mV  
nA  
nA  
V
IIN(+) or IIN(), TA = 25°C,  
VCM = 0V, See(2)  
45  
5
250  
50  
V+1.  
45  
5
250  
50  
V+1.  
Input Offset Current  
IIN(+) IIN(), VCM = 0V, TA = 25°C  
Input Common-Mode  
Voltage Range  
V+ = 30V, See(3)  
0
0
(LM2904, V+ = 26V), TA = 25°C  
5
5
Supply Current  
Over Full Temperature Range  
RL = on All Op Amps  
V+ = 30V (LM2904 V+ = 26V)  
V+ = 5V  
1
2
1
2
mA  
mA  
0.5  
1.2  
0.5  
1.2  
(1)  
V
O 1.4V, RS = 0Ω with V+ from 5V to 30V; and over the full input common-mode range (0V to V+ 1.5V) at 25°C. For LM2904, V+ from  
5V to 26V.  
(2) The direction of the input current is out of the IC due to the PNP input stage. 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 (at 25°C). The  
upper end of the common-mode voltage range is V+ 1.5V (at 25°C), but either or both inputs can go to +32V without damage (+26V for  
LM2904), independent of the magnitude of V+.  
4
Submit Documentation Feedback  
Copyright © 2000–2013, Texas Instruments Incorporated  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
www.ti.com  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
ELECTRICAL CHARACTERISTICS  
V+ = +5.0V, See(1), unless otherwise stated  
LM158A  
LM358A  
LM158/LM258  
Units  
Parameter  
Conditions  
V+ = 15V, TA = 25°C,  
Min Typ Max Min Typ Max Min Typ Max  
Large Signal Voltage  
Gain  
50  
100  
25  
100  
50  
100  
V/mV  
RL 2 kΩ, (For VO = 1V to 11V)  
Common-Mode  
Rejection Ratio  
Power Supply  
Rejection Ratio  
TA = 25°C,  
70  
65  
85  
65  
65  
85  
70  
65  
85  
dB  
dB  
VCM = 0V to V+1.5V  
V+ = 5V to 30V  
(LM2904, V+ = 5V to 26V), TA = 25°C  
100  
100  
100  
Amplifier-to-Amplifier  
Coupling  
f = 1 kHz to 20 kHz, TA = 25°C (Input  
Referred), See(2)  
120  
120  
120  
dB  
Output Current  
Source VIN+ = 1V,  
VIN= 0V,  
V+ = 15V,  
20  
10  
12  
40  
20  
10  
12  
40  
20  
10  
12  
40  
mA  
VO = 2V, TA = 25°C  
Sink VIN= 1V, VIN+ = 0V  
V+ = 15V, TA = 25°C,  
VO = 2V  
20  
50  
20  
50  
20  
50  
mA  
VIN= 1V,  
VIN+ = 0V  
μA  
TA = 25°C, VO = 200 mV,  
V+ = 15V  
Short Circuit to Ground  
Input Offset Voltage  
TA = 25°C, See(3), V+ = 15V  
See(4)  
40  
7
60  
4
40  
7
60  
5
40  
7
60  
7
mA  
mV  
Input Offset Voltage Drift RS = 0Ω  
15  
20  
μV/°C  
nA  
Input Offset Current  
Input Offset Current Drift  
Input Bias Current  
IIN(+) IIN()  
30  
75  
100  
RS = 0Ω  
10  
40  
200  
100  
10  
40  
300  
200  
10  
40  
pA/°C  
nA  
IIN(+) or IIN()  
300  
Input Common-Mode  
Voltage Range  
V+ = 30 V, See(5) (LM2904, V+ = 26V)  
0
V+2  
0
V+2  
0
V+2  
V
Large Signal Voltage  
Gain  
V+ = +15V  
(VO = 1V to 11V)  
25  
15  
25  
V/mV  
R
L 2 kΩ  
VOH V+ = +30V  
(LM2904, V+ = 26V)  
VOL V+ = 5V, RL = 10 kΩ  
Output  
Voltage  
Swing  
RL = 2 kΩ  
26  
27  
26  
27  
26  
27  
V
V
RL = 10 kΩ  
28  
5
28  
5
28  
5
20  
20  
20  
mV  
(1) These specifications are limited to 55°C TA +125°C for the LM158/LM158A. With the LM258/LM258A, all temperature  
specifications are limited to 25°C TA +85°C, the LM358/LM358A temperature specifications are limited to 0°C TA +70°C, and  
the LM2904 specifications are limited to 40°C TA +85°C.  
(2) Due to 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 frequencies.  
(3) Short circuits from the output to V+ can cause excessive heating and eventual destruction. When considering short circuits to ground,  
the maximum output current is approximately 40 mA independent of the magnitude of V+. At values of supply voltage in excess of +15V,  
continuous short-circuits can exceed the power dissipation ratings and cause eventual destruction. Destructive dissipation can result  
from simultaneous shorts on all amplifiers.  
(4)  
V
O 1.4V, RS = 0Ω with V+ from 5V to 30V; and over the full input common-mode range (0V to V+ 1.5V) at 25°C. For LM2904, V+ from  
5V to 26V.  
(5) The input common-mode voltage of either input signal voltage should not be allowed to go negative by more than 0.3V (at 25°C). The  
upper end of the common-mode voltage range is V+ 1.5V (at 25°C), but either or both inputs can go to +32V without damage (+26V for  
LM2904), independent of the magnitude of V+.  
Copyright © 2000–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
5
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
www.ti.com  
Units  
ELECTRICAL CHARACTERISTICS (continued)  
V+ = +5.0V, See(1), unless otherwise stated  
LM158A  
LM358A  
LM158/LM258  
Parameter  
Output Current  
Conditions  
Source VIN+ = +1V, VIN= 0V,  
Min Typ Max Min Typ Max Min Typ Max  
10  
10  
20  
15  
10  
5
20  
8
10  
5
20  
8
mA  
mA  
V+ = 15V, VO = 2V  
Sink VIN= +1V, VIN+ = 0V,  
V+ = 15V, VO = 2V  
ELECTRICAL CHARACTERISTICS  
V+ = +5.0V, See(1), unless otherwise stated  
LM358  
Typ  
LM2904  
Typ  
Units  
Parameter  
Conditions  
V+ = 15V, TA = 25°C,  
L 2 kΩ, (For VO = 1V to 11V)  
Min  
Max  
Min  
Max  
Large Signal Voltage  
Gain  
R
25  
65  
65  
100  
85  
25  
50  
50  
100  
70  
V/mV  
dB  
Common-Mode  
Rejection Ratio  
TA = 25°C,  
VCM = 0V to V+1.5V  
V+ = 5V to 30V  
(LM2904, V+ = 5V to 26V), TA = 25°C  
Power Supply  
Rejection Ratio  
100  
100  
dB  
Amplifier-to-Amplifier Coupling  
f = 1 kHz to 20 kHz, TA = 25°C  
(Input Referred), See(2)  
120  
120  
dB  
Output Current  
Source VIN+ = 1V,  
VIN= 0V,  
V+ = 15V,  
20  
10  
12  
40  
20  
10  
12  
40  
mA  
VO = 2V, TA = 25°C  
Sink VIN= 1V, VIN+ = 0V  
V+ = 15V, TA = 25°C,  
VO = 2V  
20  
50  
20  
mA  
VIN= 1V,  
VIN+ = 0V  
50  
40  
μA  
TA = 25°C, VO = 200 mV,  
V+ = 15V  
TA = 25°C, See(3), V+ = 15V  
See(4)  
Short Circuit to Ground  
Input Offset Voltage  
Input Offset Voltage Drift  
Input Offset Current  
Input Offset Current Drift  
Input Bias Current  
40  
7
60  
9
60  
10  
mA  
mV  
RS = 0Ω  
7
μV/°C  
nA  
IIN(+) IIN()  
150  
45  
10  
40  
200  
RS = 0Ω  
10  
40  
pA/°C  
nA  
IIN(+) or IIN()  
500  
500  
Input Common-Mode  
Voltage Range  
V+ = 30 V, See(5) (LM2904, V+ = 26V)  
0
V+2  
0
V+ 2  
V
(1) These specifications are limited to 55°C TA +125°C for the LM158/LM158A. With the LM258/LM258A, all temperature  
specifications are limited to 25°C TA +85°C, the LM358/LM358A temperature specifications are limited to 0°C TA +70°C, and  
the LM2904 specifications are limited to 40°C TA +85°C.  
(2) Due to 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 frequencies.  
(3) Short circuits from the output to V+ can cause excessive heating and eventual destruction. When considering short circuits to ground,  
the maximum output current is approximately 40 mA independent of the magnitude of V+. At values of supply voltage in excess of +15V,  
continuous short-circuits can exceed the power dissipation ratings and cause eventual destruction. Destructive dissipation can result  
from simultaneous shorts on all amplifiers.  
(4)  
V
O 1.4V, RS = 0Ω with V+ from 5V to 30V; and over the full input common-mode range (0V to V+ 1.5V) at 25°C. For LM2904, V+ from  
5V to 26V.  
(5) The input common-mode voltage of either input signal voltage should not be allowed to go negative by more than 0.3V (at 25°C). The  
upper end of the common-mode voltage range is V+ 1.5V (at 25°C), but either or both inputs can go to +32V without damage (+26V for  
LM2904), independent of the magnitude of V+.  
6
Submit Documentation Feedback  
Copyright © 2000–2013, Texas Instruments Incorporated  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
www.ti.com  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
ELECTRICAL CHARACTERISTICS (continued)  
V+ = +5.0V, See(1), unless otherwise stated  
LM358  
Typ  
LM2904  
Typ  
Units  
Parameter  
Conditions  
Min  
Max  
Min  
Max  
Large Signal Voltage Gain  
V+ = +15V  
(VO = 1V to 11V)  
L 2 kΩ  
VOH V+ = +30V  
(LM2904, V+ = 26V)  
15  
15  
V/mV  
R
Output  
RL = 2 kΩ  
26  
27  
22  
23  
V
V
Voltage  
RL = 10 kΩ  
28  
5
24  
5
Swing  
VOL V+ = 5V, RL = 10 kΩ  
Source VIN+ = +1V, VIN= 0V,  
V+ = 15V, VO = 2V  
20  
100  
mV  
Output Current  
10  
5
20  
8
10  
5
20  
8
mA  
mA  
Sink VIN= +1V, VIN+ = 0V,  
V+ = 15V, VO = 2V  
Copyright © 2000–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
7
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
 
LM158-N, LM258-N, LM2904-N, LM358-N  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
www.ti.com  
TYPICAL PERFORMANCE CHARACTERISTICS  
Input Voltage Range  
Input Current  
Figure 1.  
Figure 2.  
Supply Current  
Voltage Gain  
Figure 3.  
Figure 4.  
Open Loop Frequency Response  
Common-Mode Rejection Ratio  
Figure 5.  
Figure 6.  
8
Submit Documentation Feedback  
Copyright © 2000–2013, Texas Instruments Incorporated  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
 
LM158-N, LM258-N, LM2904-N, LM358-N  
www.ti.com  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
TYPICAL PERFORMANCE CHARACTERISTICS (continued)  
Voltage Follower Pulse Response  
Voltage Follower Pulse Response (Small Signal)  
Figure 7.  
Figure 8.  
Large Signal Frequency Response  
Output Characteristics Current Sourcing  
Figure 9.  
Figure 10.  
Output Characteristics Current Sinking  
Current Limiting  
Figure 11.  
Figure 12.  
Copyright © 2000–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
9
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
www.ti.com  
TYPICAL PERFORMANCE CHARACTERISTICS (continued)  
Input Current (LM2902 only)  
Voltage Gain (LM2902 only)  
Figure 13.  
Figure 14.  
10  
Submit Documentation Feedback  
Copyright © 2000–2013, Texas Instruments Incorporated  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
www.ti.com  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
APPLICATION HINTS  
The LM158 series are op amps which operate with only a single power supply voltage, have true-differential  
inputs, and remain in the linear mode with an input common-mode voltage of 0 VDC. These amplifiers operate  
over a wide range of power supply voltage with little change in performance characteristics. At 25°C amplifier  
operation is possible down to a minimum supply voltage of 2.3 VDC  
.
Precautions should be taken to insure that the power supply for the integrated circuit never becomes reversed in  
polarity or that the unit is not inadvertently installed backwards in a test socket as an unlimited current surge  
through the resulting forward diode within the IC could cause fusing of the internal conductors and result in a  
destroyed unit.  
Large differential input voltages can be easily accommodated and, as input differential voltage protection diodes  
are not needed, no large input currents result from large differential input voltages. The differential input voltage  
may be larger than V+ without damaging the device. Protection should be provided to prevent the input voltages  
from going negative more than 0.3 VDC (at 25°C). An input clamp diode with a resistor to the IC input terminal  
can be used.  
To reduce the power supply current drain, the amplifiers have a class A output stage for small signal levels which  
converts to class B in a large signal mode. This allows the amplifiers to both source and sink large output  
currents. Therefore both NPN and PNP external current boost transistors can be used to extend the power  
capability of the basic amplifiers. The output voltage needs to raise approximately 1 diode drop above ground to  
bias the on-chip vertical PNP transistor for output current sinking applications.  
For ac applications, where the load is capacitively coupled to the output of the amplifier, a resistor should be  
used, from the output of the amplifier to ground to increase the class A bias current and prevent crossover  
distortion. Where the load is directly coupled, as in dc applications, there is no crossover distortion.  
Capacitive loads which are applied directly to the output of the amplifier reduce the loop stability margin. Values  
of 50 pF can be accommodated using the worst-case non-inverting unity gain connection. Large closed loop  
gains or resistive isolation should be used if larger load capacitance must be driven by the amplifier.  
The bias network of the LM158 establishes a drain current which is independent of the magnitude of the power  
supply voltage over the range of 3 VDC to 30 VDC  
.
Output short circuits either to ground or to the positive power supply should be of short time duration. Units can  
be destroyed, not as a result of the short circuit current causing metal fusing, but rather due to the large increase  
in IC chip dissipation which will cause eventual failure due to excessive function temperatures. Putting direct  
short-circuits on more than one amplifier at a time will increase the total IC power dissipation to destructive  
levels, if not properly protected with external dissipation limiting resistors in series with the output leads of the  
amplifiers. The larger value of output source current which is available at 25°C provides a larger output current  
capability at elevated temperatures (see TYPICAL PERFORMANCE CHARACTERISTICS) than a standard IC  
op amp.  
The circuits presented in the TYPICAL SINGLE-SUPPLY APPLICATIONS emphasize operation on only a single  
power supply voltage. If complementary power supplies are available, all of the standard op amp circuits can be  
used. In general, introducing a pseudo-ground (a bias voltage reference of V+/2) will allow operation above and  
below this value in single power supply systems. Many application circuits are shown which take advantage of  
the wide input common-mode voltage range which includes ground. In most cases, input biasing is not required  
and input voltages which range to ground can easily be accommodated.  
Copyright © 2000–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
11  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
www.ti.com  
CONNECTION DIAGRAM  
Figure 15. PDIP/CDIP/SOIC Package – Top View  
(See Package Number P, NAB0008A, or D)  
Figure 16. TO-99 Package – Top View  
(See Package Number LMC)  
Figure 17. 8-Bump DSBGA - Top View, Bump Side Down  
(See Package Number YPB0008AAA)  
TYPICAL SINGLE-SUPPLY APPLICATIONS  
(V+ = 5.0 VDC  
)
Figure 18. Non-Inverting DC Gain (0V Output)  
*R not needed due to temperature  
independent IIN  
12  
Submit Documentation Feedback  
Copyright © 2000–2013, Texas Instruments Incorporated  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
www.ti.com  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
Where: VO = V1 + V2 V3 V4  
(V1 + V2) (V3 + V4) to keep VO > 0 VDC  
Figure 19. DC Summing Amplifier  
(VIN'S 0 VDC and VO 0 VDC  
)
VO = 0 VDC for VIN = 0 VDC  
AV = 10  
Figure 20. Power Amplifier  
Copyright © 2000–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
13  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
www.ti.com  
fo = 1 kHz  
Q = 50  
Av = 100 (40 dB)  
Figure 21. “BI-QUAD” RC Active Bandpass Filter  
Figure 22. Fixed Current Sources  
Figure 23. Lamp Driver  
14  
Submit Documentation Feedback  
Copyright © 2000–2013, Texas Instruments Incorporated  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
www.ti.com  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
Figure 24. LED Driver  
*(Increase R1 for IL small)  
L V+ 2V  
V
Figure 25. Current Monitor  
Figure 26. Driving TTL  
VO = VIN  
Figure 27. Voltage Follower  
Copyright © 2000–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
15  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
www.ti.com  
Figure 28. Pulse Generator  
Figure 29. Squarewave Oscillator  
Figure 30. Pulse Generator  
HIGH ZIN  
LOW ZOUT  
Figure 31. Low Drift Peak Detector  
16  
Submit Documentation Feedback  
Copyright © 2000–2013, Texas Instruments Incorporated  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
www.ti.com  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
IO = 1 amp/volt VIN  
(Increase RE for IO small)  
Figure 32. High Compliance Current Sink  
Figure 33. Comparator with Hysteresis  
*WIDE CONTROL VOLTAGE RANGE: 0 VDC VC 2 (V+ 1.5V DC  
)
Figure 34. Voltage Controlled Oscillator (VCO)  
Copyright © 2000–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
17  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
www.ti.com  
Figure 35. AC Coupled Inverting Amplifier  
Figure 36. Ground Referencing a Differential Input Signal  
Av = 11 (As Shown)  
Figure 37. AC Coupled Non-Inverting Amplifier  
18  
Submit Documentation Feedback  
Copyright © 2000–2013, Texas Instruments Incorporated  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
www.ti.com  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
fo = 1 kHz  
Q = 1  
AV = 2  
Figure 38. DC Coupled Low-Pass RC Active Filter  
fo = 1 kHz  
Q = 25  
Figure 39. Bandpass Active Filter  
Figure 40. High Input Z, DC Differential Amplifier  
Copyright © 2000–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
19  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
www.ti.com  
Figure 41. Photo Voltaic-Cell Amplifier  
Figure 42. Bridge Current Amplifier  
Figure 43. High Input Z Adjustable-Gain DC Instrumentation Amplifier  
20  
Submit Documentation Feedback  
Copyright © 2000–2013, Texas Instruments Incorporated  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
LM158-N, LM258-N, LM2904-N, LM358-N  
www.ti.com  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
Figure 44. Using Symmetrical Amplifiers to Reduce Input Current (General Concept)  
SCHEMATIC DIAGRAM  
(Each Amplifier)  
Copyright © 2000–2013, Texas Instruments Incorporated  
Submit Documentation Feedback  
21  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
 
LM158-N, LM258-N, LM2904-N, LM358-N  
SNOSBT3H JANUARY 2000REVISED MARCH 2013  
www.ti.com  
REVISION HISTORY  
Changes from Revision G (March 2013) to Revision H  
Page  
Changed layout of National Data Sheet to TI format .......................................................................................................... 21  
22  
Submit Documentation Feedback  
Copyright © 2000–2013, Texas Instruments Incorporated  
Product Folder Links: LM158-N LM258-N LM2904-N LM358-N  
PACKAGE OPTION ADDENDUM  
www.ti.com  
9-Aug-2013  
PACKAGING INFORMATION  
Orderable Device  
Status Package Type Package Pins Package  
Eco Plan Lead/Ball Finish  
MSL Peak Temp  
Op Temp (°C)  
Device Marking  
Samples  
Drawing  
Qty  
(1)  
(2)  
(3)  
(4/5)  
LM158AH  
ACTIVE  
TO-99  
TO-99  
LMC  
8
8
500  
TBD  
Call TI  
Call TI  
-55 to 125  
-55 to 125  
LM158AH  
LM158AH/NOPB  
ACTIVE  
LMC  
500  
Green (RoHS POST-PLATE  
& no Sb/Br)  
Level-1-NA-UNLIM  
LM158AH  
LM158H  
ACTIVE  
ACTIVE  
TO-99  
TO-99  
LMC  
LMC  
8
8
500  
500  
TBD  
Call TI  
Call TI  
-55 to 125  
-55 to 125  
LM158H  
LM158H  
LM158H/NOPB  
Green (RoHS POST-PLATE  
& no Sb/Br)  
Level-1-NA-UNLIM  
LM158J  
LM258H  
ACTIVE  
ACTIVE  
ACTIVE  
CDIP  
TO-99  
TO-99  
NAB  
LMC  
LMC  
8
8
8
40  
TBD  
Call TI  
Call TI  
Call TI  
-55 to 125  
-25 to 85  
-25 to 85  
LM158J  
LM258H  
LM258H  
500  
500  
TBD  
Call TI  
LM258H/NOPB  
Green (RoHS POST-PLATE  
& no Sb/Br)  
Level-1-NA-UNLIM  
LM2904ITP/NOPB  
LM2904ITPX/NOPB  
LM2904M  
ACTIVE  
ACTIVE  
ACTIVE  
ACTIVE  
ACTIVE  
ACTIVE  
ACTIVE  
ACTIVE  
ACTIVE  
ACTIVE  
ACTIVE  
DSBGA  
DSBGA  
SOIC  
SOIC  
SOIC  
SOIC  
PDIP  
YPB  
YPB  
D
8
8
8
8
8
8
8
8
8
8
8
250  
3000  
95  
Green (RoHS  
& no Sb/Br)  
SNAGCU  
SNAGCU  
Call TI  
Level-1-260C-UNLIM  
Level-1-260C-UNLIM  
Call TI  
-40 to 85  
-40 to 85  
-40 to 85  
-40 to 85  
-40 to 85  
-40 to 85  
-40 to 85  
-40 to 85  
0 to 70  
A
09  
Green (RoHS  
& no Sb/Br)  
A
09  
TBD  
LM  
2904M  
LM2904M/NOPB  
LM2904MX  
D
95  
Green (RoHS  
& no Sb/Br)  
CU SN  
Call TI  
Level-1-260C-UNLIM  
Call TI  
LM  
2904M  
D
2500  
2500  
40  
TBD  
LM  
2904M  
LM2904MX/NOPB  
LM2904N  
D
Green (RoHS  
& no Sb/Br)  
CU SN  
Call TI  
Level-1-260C-UNLIM  
Call TI  
LM  
2904M  
P
TBD  
LM  
2904N  
LM2904N/NOPB  
LM358AM  
PDIP  
P
40  
Green (RoHS  
& no Sb/Br)  
CU SN  
Call TI  
Level-1-NA-UNLIM  
Call TI  
LM  
2904N  
SOIC  
SOIC  
SOIC  
D
95  
TBD  
LM  
358AM  
LM358AM/NOPB  
LM358AMX  
D
95  
Green (RoHS  
& no Sb/Br)  
CU SN  
Call TI  
Level-1-260C-UNLIM  
Call TI  
0 to 70  
LM  
358AM  
D
2500  
TBD  
0 to 70  
LM  
358AM  
Addendum-Page 1  
PACKAGE OPTION ADDENDUM  
www.ti.com  
9-Aug-2013  
Orderable Device  
Status Package Type Package Pins Package  
Eco Plan Lead/Ball Finish  
MSL Peak Temp  
Op Temp (°C)  
0 to 70  
Device Marking  
Samples  
Drawing  
Qty  
(1)  
(2)  
(3)  
(4/5)  
LM358AMX/NOPB  
LM358AN  
ACTIVE  
SOIC  
PDIP  
PDIP  
D
8
8
8
2500  
Green (RoHS  
& no Sb/Br)  
CU SN  
Call TI  
CU SN  
Call TI  
Level-1-260C-UNLIM  
LM  
358AM  
ACTIVE  
ACTIVE  
P
P
40  
40  
TBD  
Call TI  
0 to 70  
LM  
358AN  
LM358AN/NOPB  
Green (RoHS  
& no Sb/Br)  
Level-1-NA-UNLIM  
0 to 70  
LM  
358AN  
LM358H  
ACTIVE  
ACTIVE  
TO-99  
TO-99  
LMC  
LMC  
8
8
500  
500  
TBD  
Call TI  
0 to 70  
0 to 70  
LM358H  
LM358H/NOPB  
Green (RoHS POST-PLATE  
& no Sb/Br)  
Level-1-NA-UNLIM  
LM358H  
LM358M  
LM358M/NOPB  
LM358MX  
ACTIVE  
ACTIVE  
ACTIVE  
ACTIVE  
ACTIVE  
ACTIVE  
ACTIVE  
ACTIVE  
SOIC  
SOIC  
D
D
8
8
8
8
8
8
8
8
95  
95  
TBD  
Call TI  
CU SN  
Call TI  
Call TI  
0 to 70  
0 to 70  
0 to 70  
0 to 70  
0 to 70  
0 to 70  
0 to 70  
0 to 70  
LM  
358M  
Green (RoHS  
& no Sb/Br)  
Level-1-260C-UNLIM  
Call TI  
LM  
358M  
SOIC  
D
2500  
2500  
40  
TBD  
LM  
358M  
LM358MX/NOPB  
LM358N  
SOIC  
D
Green (RoHS  
& no Sb/Br)  
CU SN  
Call TI  
Level-1-260C-UNLIM  
Call TI  
LM  
358M  
PDIP  
P
TBD  
LM  
358N  
LM358N/NOPB  
LM358TP/NOPB  
LM358TPX/NOPB  
PDIP  
P
40  
Green (RoHS  
& no Sb/Br)  
CU SN  
SNAGCU  
SNAGCU  
Level-1-NA-UNLIM  
Level-1-260C-UNLIM  
Level-1-260C-UNLIM  
LM  
358N  
DSBGA  
DSBGA  
YPB  
YPB  
250  
3000  
Green (RoHS  
& no Sb/Br)  
A
07  
Green (RoHS  
& no Sb/Br)  
A
07  
(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), Pb-Free (RoHS Exempt), 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.  
Addendum-Page 2  
PACKAGE OPTION ADDENDUM  
www.ti.com  
9-Aug-2013  
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 at high temperatures, TI Pb-Free products are suitable for use in specified lead-free processes.  
Pb-Free (RoHS Exempt): This component has a RoHS exemption for either 1) lead-based flip-chip solder bumps used between the die and package, or 2) lead-based die adhesive used between  
the die and leadframe. The component is otherwise considered Pb-Free (RoHS compatible) as defined above.  
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.  
(4) There may be additional marking, which relates to the logo, the lot trace code information, or the environmental category on the device.  
(5) Multiple Device Markings will be inside parentheses. Only one Device Marking contained in parentheses and separated by a "~" will appear on a device. If a line is indented then it is a continuation  
of the previous line and the two combined represent the entire Device Marking for that device.  
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 3  
PACKAGE MATERIALS INFORMATION  
www.ti.com  
8-Apr-2013  
TAPE AND REEL INFORMATION  
*All dimensions are nominal  
Device  
Package Package Pins  
Type Drawing  
SPQ  
Reel  
Reel  
A0  
B0  
K0  
P1  
W
Pin1  
Diameter Width (mm) (mm) (mm) (mm) (mm) Quadrant  
(mm) W1 (mm)  
LM2904ITP/NOPB  
LM2904ITPX/NOPB  
LM2904MX  
DSBGA  
DSBGA  
SOIC  
YPB  
YPB  
D
8
8
8
8
8
8
8
8
8
8
250  
3000  
2500  
2500  
2500  
2500  
2500  
2500  
250  
178.0  
178.0  
330.0  
330.0  
330.0  
330.0  
330.0  
330.0  
178.0  
178.0  
8.4  
8.4  
1.5  
1.5  
6.5  
6.5  
6.5  
6.5  
6.5  
6.5  
1.5  
1.5  
1.5  
1.5  
5.4  
5.4  
5.4  
5.4  
5.4  
5.4  
1.5  
1.5  
0.66  
0.66  
2.0  
4.0  
4.0  
8.0  
8.0  
8.0  
8.0  
8.0  
8.0  
4.0  
4.0  
8.0  
8.0  
Q1  
Q1  
Q1  
Q1  
Q1  
Q1  
Q1  
Q1  
Q1  
Q1  
12.4  
12.4  
12.4  
12.4  
12.4  
12.4  
8.4  
12.0  
12.0  
12.0  
12.0  
12.0  
12.0  
8.0  
LM2904MX/NOPB  
LM358AMX  
SOIC  
D
2.0  
SOIC  
D
2.0  
LM358AMX/NOPB  
LM358MX  
SOIC  
D
2.0  
SOIC  
D
2.0  
LM358MX/NOPB  
LM358TP/NOPB  
LM358TPX/NOPB  
SOIC  
D
2.0  
DSBGA  
DSBGA  
YPB  
YPB  
0.66  
0.66  
3000  
8.4  
8.0  
Pack Materials-Page 1  
PACKAGE MATERIALS INFORMATION  
www.ti.com  
8-Apr-2013  
*All dimensions are nominal  
Device  
Package Type Package Drawing Pins  
SPQ  
Length (mm) Width (mm) Height (mm)  
LM2904ITP/NOPB  
LM2904ITPX/NOPB  
LM2904MX  
DSBGA  
DSBGA  
SOIC  
YPB  
YPB  
D
8
8
8
8
8
8
8
8
8
8
250  
3000  
2500  
2500  
2500  
2500  
2500  
2500  
250  
210.0  
210.0  
367.0  
367.0  
367.0  
367.0  
367.0  
367.0  
210.0  
210.0  
185.0  
185.0  
367.0  
367.0  
367.0  
367.0  
367.0  
367.0  
185.0  
185.0  
35.0  
35.0  
35.0  
35.0  
35.0  
35.0  
35.0  
35.0  
35.0  
35.0  
LM2904MX/NOPB  
LM358AMX  
SOIC  
D
SOIC  
D
LM358AMX/NOPB  
LM358MX  
SOIC  
D
SOIC  
D
LM358MX/NOPB  
LM358TP/NOPB  
LM358TPX/NOPB  
SOIC  
D
DSBGA  
DSBGA  
YPB  
YPB  
3000  
Pack Materials-Page 2  
MECHANICAL DATA  
NAB0008A  
J08A (Rev M)  
www.ti.com  
MECHANICAL DATA  
YPB0008  
D
0.5±0.045  
E
TPA08XXX (Rev A)  
D: Max = 1.337 mm, Min =1.276 mm  
E: Max = 1.337 mm, Min =1.276 mm  
4215100/A  
12/12  
A. All linear dimensions are in millimeters. Dimensioning and tolerancing per ASME Y14.5M-1994.  
B. This drawing is subject to change without notice.  
NOTES:  
www.ti.com  
IMPORTANT NOTICE  
Texas Instruments Incorporated and its subsidiaries (TI) reserve the right to make corrections, enhancements, improvements and other  
changes to its semiconductor products and services per JESD46, latest issue, and to discontinue any product or service per JESD48, latest  
issue. Buyers should obtain the latest relevant information before placing orders and should verify that such information is current and  
complete. All semiconductor products (also referred to herein as “components”) are sold subject to TI’s terms and conditions of sale  
supplied at the time of order acknowledgment.  
TI warrants performance of its components to the specifications applicable at the time of sale, in accordance with the warranty in TI’s terms  
and conditions of sale of semiconductor products. Testing and other quality control techniques are used to the extent TI deems necessary  
to support this warranty. Except where mandated by applicable law, testing of all parameters of each component is not necessarily  
performed.  
TI assumes no liability for applications assistance or the design of Buyers’ products. Buyers are responsible for their products and  
applications using TI components. To minimize the risks associated with Buyers’ products and applications, Buyers should provide  
adequate design and operating safeguards.  
TI does not 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 relating to any combination, machine, or process in which TI components or services are used. Information  
published by TI regarding third-party products or services does not constitute a license 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 significant portions of TI 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. TI is not responsible or liable for such altered  
documentation. Information of third parties may be subject to additional restrictions.  
Resale of TI components or services with statements different from or beyond the parameters stated by TI for that component or service  
voids all express and any implied warranties for the associated TI component or service and is an unfair and deceptive business practice.  
TI is not responsible or liable for any such statements.  
Buyer acknowledges and agrees that it is solely responsible for compliance with all legal, regulatory and safety-related requirements  
concerning its products, and any use of TI components in its applications, notwithstanding any applications-related information or support  
that may be provided by TI. Buyer represents and agrees that it has all the necessary expertise to create and implement safeguards which  
anticipate dangerous consequences of failures, monitor failures and their consequences, lessen the likelihood of failures that might cause  
harm and take appropriate remedial actions. Buyer will fully indemnify TI and its representatives against any damages arising out of the use  
of any TI components in safety-critical applications.  
In some cases, TI components may be promoted specifically to facilitate safety-related applications. With such components, TI’s goal is to  
help enable customers to design and create their own end-product solutions that meet applicable functional safety standards and  
requirements. Nonetheless, such components are subject to these terms.  
No TI components are authorized for use in FDA Class III (or similar life-critical medical equipment) unless authorized officers of the parties  
have executed a special agreement specifically governing such use.  
Only those TI components which TI has specifically designated as military grade or “enhanced plastic” are designed and intended for use in  
military/aerospace applications or environments. Buyer acknowledges and agrees that any military or aerospace use of TI components  
which have not been so designated is solely at the Buyer's risk, and that Buyer is solely responsible for compliance with all legal and  
regulatory requirements in connection with such use.  
TI has specifically designated certain components as meeting ISO/TS16949 requirements, mainly for automotive use. In any case of use of  
non-designated products, TI will not be responsible for any failure to meet ISO/TS16949.  
Products  
Applications  
Audio  
www.ti.com/audio  
amplifier.ti.com  
dataconverter.ti.com  
www.dlp.com  
Automotive and Transportation www.ti.com/automotive  
Communications and Telecom www.ti.com/communications  
Amplifiers  
Data Converters  
DLP® Products  
DSP  
Computers and Peripherals  
Consumer Electronics  
Energy and Lighting  
Industrial  
www.ti.com/computers  
www.ti.com/consumer-apps  
www.ti.com/energy  
dsp.ti.com  
Clocks and Timers  
Interface  
www.ti.com/clocks  
interface.ti.com  
logic.ti.com  
www.ti.com/industrial  
www.ti.com/medical  
Medical  
Logic  
Security  
www.ti.com/security  
Power Mgmt  
Microcontrollers  
RFID  
power.ti.com  
Space, Avionics and Defense  
Video and Imaging  
www.ti.com/space-avionics-defense  
www.ti.com/video  
microcontroller.ti.com  
www.ti-rfid.com  
www.ti.com/omap  
OMAP Applications Processors  
Wireless Connectivity  
TI E2E Community  
e2e.ti.com  
www.ti.com/wirelessconnectivity  
Mailing Address: Texas Instruments, Post Office Box 655303, Dallas, Texas 75265  
Copyright © 2013, Texas Instruments Incorporated  

相关型号:

LM358NB

Operational Amplifier, 2 Func, 9000uV Offset-Max, BIPolar, PDIP8,
RAYTHEON

LM358ND

Voltage-Feedback Operational Amplifier
ETC

LM358NDS

Operational Amplifier, 2 Func, 9000uV Offset-Max, BIPolar, PDIP8
MOTOROLA

LM358NG

Single Supply Dual Operational Amplifiers
ONSEMI

LM358NS

DUAL OPERATIONAL AMPLIFIERS
TI

LM358NSIIB

Operational Amplifier, 2 Func, 9000uV Offset-Max, BIPolar, PDIP8
PHILIPS

LM358P

LOW POWER DUAL OPERATIONAL AMPLIFIERS
STMICROELECTR

LM358P

DUAL OPERATIONAL AMPLIFIERS
TI

LM358P

DUAL OP-AMP, 9000uV OFFSET-MAX, 0.7MHz BAND WIDTH, PDIP8, ROHS COMPLIANT, PLASTIC, DIP-8
ROCHESTER

LM358P/P3

IC,OP-AMP,DUAL,BIPOLAR,DIP,8PIN,PLASTIC
TI

LM358P8-XX-AR

Dual Operational Amplifier
TAITRON

LM358P8-XX-BL

Dual Operational Amplifier
TAITRON