LM258, LM358, LM358A, LM358E, LM2904, LM2904A, LM2904E, LM2904V, NCV2904
www.onsemi.com
4
ELECTRICAL CHARACTERISTICS (V
CC
= 5.0 V, V
EE
= GND, T
A
= 25°C, unless otherwise noted.)
Characteristic
Symbo
l
LM258 LM358, LM358E LM358A
Unit
Min Typ Max Min Typ Max Min Typ Max
Input Offset Voltage
V
CC
= 5.0 V to 30 V, V
IC
= 0 V to V
CC
−1.7 V,
V
O
] 1.4 V, R
S
= 0
V
IO
mV
T
A
= 25°C 2.0 5.0 2.0 7.0 2.0 3.0
T
A
= T
high
(Note 4) 7.0 9.0 5.0
T
A
= T
low
(Note 4) 7.0 9.0 5.0
Average Temperature Coefficient of Input Offset
Voltage
V
IO
/T
7.0 7.0 7.0
V/°C
T
A
= T
high
to T
low
(Note 4)
Input Offset Current I
IO
3.0 30 5.0 50 5.0 30 nA
T
A
= T
high
to T
low
(Note 4) 100 150 75
Input Bias Current I
IB
−45 −150 −45 −250 −45 −100
T
A
= T
high
to T
low
(Note 4) −50 −300 −50 −500 −50 −200
Average Temperature Coefficient of Input Offset
Current
I
IO
/T
10 10 10 pA/°C
T
A
= T
high
to T
low
(Note 4)
Input Common Mode Voltage Range (Note 5),
V
CC
= 30 V
V
ICR
0 28.3 0 28.3 0 28.5 V
V
CC
= 30 V, T
A
= T
high
to T
low
0 28 0 28 0 28
Differential Input Voltage Range V
IDR
V
CC
V
CC
V
CC
V
Large Signal Open Loop Voltage Gain A
VOL
V/mV
R
L
= 2.0 k, V
CC
= 15 V, For Large V
O
Swing,
50 100 25 100 25 100
T
A
= T
high
to T
low
(Note 4) 25 15 15
Channel Separation CS −120 −120 −120 dB
1.0 kHz f 20 kHz, Input Referenced
Common Mode Rejection
CMR 70 85 65 70 65 70 dB
R
S
10 k
Power Supply Rejection PSR 65 100 65 100 65 100 dB
Output Voltage−High Limit
T
A
= T
high
to T
low
(Note 4)
V
OH
V
V
CC
= 5.0 V, R
L
= 2.0 k, T
A
= 25°C
3.3 3.5 3.3 3.5 3.3 3.5
V
CC
= 30 V, R
L
= 2.0 k
26 26 26
V
CC
= 30 V, R
L
= 10 k
27 28 27 28 27 28
Output Voltage−Low Limit V
OL
5.0 20 5.0 20 5.0 20 mV
V
CC
= 5.0 V, R
L
= 10 k,
T
A
= T
high
to T
low
(Note 4)
Output Source Current I
O+
mA
V
ID
= +1.0 V, V
CC
= 15 V 20 40 20 40 20 40
T
A
= T
high
to T
low
(LM358A Only) 10
Output Sink Current I
O
V
ID
= −1.0 V, V
CC
= 15 V 10 20 10 20 10 20 mA
T
A
= T
high
to T
low
(LM358A Only) 5.0 mA
V
ID
= −1.0 V, V
O
= 200 mV 12 50 12 50 12 50
A
Output Short Circuit to Ground (Note 6) I
SC
40 60 40 60 40 60 mA
Power Supply Current (Total Device)
T
A
= T
high
to T
low
(Note 4)
I
CC
mA
V
CC
= 30 V, V
O
= 0 V, R
L
= 1.5 3.0 1.5 3.0 1.5 2.0
V
CC
= 5 V, V
O
= 0 V, R
L
= 0.7 1.2 0.7 1.2 0.7 1.2
4. LM258: T
low
= −25°C, T
high
= +85°C LM358, LM358A, LM358E: T
low
= 0°C, T
high
= +70°C
LM2904/A/E: T
low
= −40°C, T
high
= +105°C LM2904V & NCV2904: T
low
= −40°C, T
high
= +125°C
NCV2904 is qualified for automotive use.
5. The input common mode voltage or either input signal voltage should not be allowed to go negative by more than 0.3 V. The upper end of
the common mode voltage range is V
CC
− 1.7 V.
6. Short circuits from the output to V
CC
can cause excessive heating and eventual destruction. Destructive dissipation can result from
simultaneous shorts on all amplifiers.
LM258, LM358, LM358A, LM358E, LM2904, LM2904A, LM2904E, LM2904V, NCV2904
www.onsemi.com
5
ELECTRICAL CHARACTERISTICS (V
CC
= 5.0 V, V
EE
= Gnd, T
A
= 25°C, unless otherwise noted.)
Characteristic
Symbo
l
LM2904/LM2904E LM2904A LM2904V, NCV2904
Unit
Min Typ Max Min Typ Max Min Typ Max
Input Offset Voltage
V
CC
= 5.0 V to 30 V, V
IC
= 0 V to V
CC
−1.7 V,
V
O
] 1.4 V, R
S
= 0
V
IO
mV
T
A
= 25°C 2.0 7.0 2.0 7.0 7.0
T
A
= T
high
(Note 7) 10 10 13
T
A
= T
low
(Note 7) 10 10 10
Average Temperature Coefficient of Input Offset
Voltage
V
IO
/T
7.0 7.0 7.0
V/°C
T
A
= T
high
to T
low
(Note 7)
Input Offset Current I
IO
5.0 50 5.0 50 5.0 50 nA
T
A
= T
high
to T
low
(Note 7) 45 200 45 200 45 200
Input Bias Current I
IB
−45 −250 −45 −100 −45 −250
T
A
= T
high
to T
low
(Note 7) −50 −500 −50 −250 −50 −500
Average Temperature Coefficient of Input Offset
Current
I
IO
/T
10 10 10 pA/°C
T
A
= T
high
to T
low
(Note 7)
Input Common Mode Voltage Range (Note 8),
V
CC
= 30 V
V
ICR
0 28.3 0 28.3 0 28.3 V
V
CC
= 30 V, T
A
= T
high
to T
low
0 28 0 28 0 28
Differential Input Voltage Range V
IDR
V
CC
V
CC
V
CC
V
Large Signal Open Loop Voltage Gain A
VOL
V/mV
R
L
= 2.0 k, V
CC
= 15 V, For Large V
O
Swing,
25 100 25 100 25 100
T
A
= T
high
to T
low
(Note 7) 15 15 15
Channel Separation CS −120 −120 −120 dB
1.0 kHz f 20 kHz, Input Referenced
Common Mode Rejection
CMR 50 70 50 70 50 70 dB
R
S
10 k
Power Supply Rejection PSR 50 100 50 100 50 100 dB
Output Voltage−High Limit
T
A
= T
high
to T
low
(Note 7)
V
OH
V
V
CC
= 5.0 V, R
L
= 2.0 k, T
A
= 25°C
3.3 3.5 3.3 3.5 3.3 3.5
V
CC
= 30 V, R
L
= 2.0 k
26 26 26
V
CC
= 30 V, R
L
= 10 k
27 28 27 28 27 28
Output Voltage−Low Limit V
OL
5.0 20 5.0 20 5.0 20 mV
V
CC
= 5.0 V, R
L
= 10 k,
T
A
= T
high
to T
low
(Note 7)
Output Source Current I
O+
20 40 20 40 20 40 mA
V
ID
= +1.0 V, V
CC
= 15 V
Output Sink Current I
O
V
ID
= −1.0 V, V
CC
= 15 V 10 20 10 20 10 20 mA
V
ID
= −1.0 V, V
O
= 200 mV
A
Output Short Circuit to Ground (Note 9) I
SC
40 60 40 60 40 60 mA
Power Supply Current (Total Device)
T
A
= T
high
to T
low
(Note 7)
I
CC
mA
V
CC
= 30 V, V
O
= 0 V, R
L
= 1.5 3.0 1.5 3.0 1.5 3.0
V
CC
= 5 V, V
O
= 0 V, R
L
= 0.7 1.2 0.7 1.2 0.7 1.2
7. LM258: T
low
= −25°C, T
high
= +85°C LM358, LM358A, LM358E: T
low
= 0°C, T
high
= +70°C
LM2904/A/E: T
low
= −40°C, T
high
= +105°C LM2904V & NCV2904: T
low
= −40°C, T
high
= +125°C
NCV2904 is qualified for automotive use.
8. The input common mode voltage or either input signal voltage should not be allowed to go negative by more than 0.3 V. The upper end of
the common mode voltage range is V
CC
− 1.7 V.
9. Short circuits from the output to V
CC
can cause excessive heating and eventual destruction. Destructive dissipation can result from
simultaneous shorts on all amplifiers.
Product parametric performance is indicated in the Electrical Characteristics for the listed test conditions, unless otherwise noted. Product
performance may not be indicated by the Electrical Characteristics if operated under different conditions.
LM258, LM358, LM358A, LM358E, LM2904, LM2904A, LM2904E, LM2904V, NCV2904
www.onsemi.com
6
CIRCUIT DESCRIPTION
The LM358 series is made using two internally
compensated, two−stage operational amplifiers. The first
stage of each consists of differential input devices Q20 and
Q18 with input buffer transistors Q21 and Q17 and the
differential to single ended converter Q3 and Q4. The first
stage performs not only the first stage gain function but also
performs the level shifting and transconductance reduction
functions. By reducing the transconductance, a smaller
compensation capacitor (only 5.0 pF) can be employed, thus
saving chip area. The transconductance reduction is
accomplished by splitting the collectors of Q20 and Q18.
Another feature of this input stage is that the input common
mode range can include the negative supply or ground, in
single supply operation, without saturating either the input
devices or the differential to single−ended converter. The
second stage consists of a standard current source load
amplifier stage.
Each amplifier is biased from an internal−voltage
regulator which has a low temperature coefficient thus
giving each amplifier good temperature characteristics as
well as excellent power supply rejection.
Figure 3. Large Signal Voltage
Follower Response
5.0 s/DIV
1.0 V/DIV
V
CC
= 15 Vdc
R
L
= 2.0 k
T
A
= 25°C
A
VOL
, OPEN LOOP VOLTAGE GAIN (dB)
V , INPUT VOLTAGE (V)
I
Figure 4. Input Voltage Range Figure 5. Large−Signal Open Loop Voltage Gain
18
16
14
12
10
8.0
6.0
4.0
2.0
0
20
0 2.0 4.0 6.0 8.0 10 12 14 16 18 20
V
CC
/V
EE,
POWER SUPPLY VOLTAGES (V)
120
100
80
60
40
20
0
-20
1.0 10 100 1.0 k 10 k 100 k 1.0 M
f, FREQUENCY (Hz)
Negative
Positive
V
CC
= 15 V
V
EE
= Gnd
T
A
= 25°C

LM2904ADMG

Mfr. #:
Manufacturer:
ON Semiconductor
Description:
Operational Amplifiers - Op Amps 3-26V Dual Lo PWR -40 to 105deg C
Lifecycle:
New from this manufacturer.
Delivery:
DHL FedEx Ups TNT EMS
Payment:
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