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TLV2375ID

Part # TLV2375ID
Description OP Amp Quad GP R-R I/O ±8V/16V 16-Pin SOIC Tube - Rail/Tub
Category IC
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Texas Instruments
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Technical Document


DISCLAIMER: The information provided herein is solely for informational purposes. Customers must be aware of the suitability of this product for their application, and consider that variable factors such as Manufacturer, Product Category, Date Codes, Pictures and Descriptions may differ from available inventory.

     
  µ   
   
SLOS270C − MARCH 2001 − REVISED DECEMBER 2003
7
WWW.TI.COM
POST OFFICE BOX 1443
HOUSTON, TEXAS 77251−1443
electrical characteristics at specified free-air temperature, V
DD
= 2.7 V, 5 V, and 15 V (unless
otherwise noted) (continued)
dynamic performance
PARAMETER TEST CONDITIONS
T
A
MIN TYP MAX UNIT
UGBW
Unity gain bandwidth
R
L
= 2 k
,
V
DD
= 2.7 V
25°C 2.4
MHz
UGBW Unity gain bandwidth
R
L
= 2 k
,
C
L
= 10 pF
V
DD
= 5 V to 15 V
25°C 3
MHz
V
DD
= 2.7 V
25°C
1.4 2
V/ s
V = V /2,
V
DD
= 2.7 V
Full range 1
V/µs
SR
Slew rate at unity gain
V
O(PP)
= V
DD
/2,
C
L
= 50 pF,
V
DD
= 5 V
25°C
1.6 2.4
V/ s
SR Slew rate at unity gain
O(PP) DD
C
L
= 50 pF,
R
L
= 10 k
V
DD
= 5 V
Full range 1.2
V/µs
R
L
= 10 k
V
DD
= 15 V
25°C
1.9 2.1
V/ s
V
DD
= 15 V
Full range 1.4
V/µs
φ
m
Phase margin
R
L
= 2 k, C
L
= 100 pF
25°C 65°
Gain margin
R
L
= 2 k, C
L
= 10 pF
25°C 18 dB
t
s
Settling time
V
DD
= 2.7 V,
V
(STEP)PP
= 1 V, A
V
= −1,
C
L
= 10 pF, R
L
= 2 k
0.1%
25°C
2.9
s
t
s
Settling time
V
DD
= 5 V, 15 V,
V
(STEP)PP
= 1 V, A
V
= −1,
C
L
= 47 pF, R
L
= 2 k
0.1%
25°C
2
µs
noise/distortion performance
PARAMETER TEST CONDITIONS
T
A
MIN TYP MAX UNIT
V
DD
= 2.7 V,
A
V
= 1 0.02%
V
DD
= 2.7 V,
V
O(PP)
= V
DD
/2 V,
R = 2 k , f = 10 kHz
A
V
= 10
25°C
0.05%
THD + N
Total harmonic distortion plus noise
V
O(PP)
= V
DD
/2 V,
R
L
= 2 k, f = 10 kHz
A
V
= 100
25 C
0.18%
THD + N Total harmonic distortion plus noise
V
DD
= 5 V, 15 V,
A
V
= 1 0.02%
V
DD
= 5 V, 15 V,
V
O(PP)
= V
DD
/2 V,
R = 2 k , f = 10 kHz
A
V
= 10
25°C
0.09%
V
O(PP)
= V
DD
/2 V,
R
L
= 2 k, f = 10 kHz
A
V
= 100
25 C
0.5%
V
n
Equivalent input noise voltage
f = 1 kHz
25°C
39
nV/Hz
V
n
Equivalent input noise voltage
f = 10 kHz
25°C
35
nV/Hz
I
n
Equivalent input noise current f = 1 kHz 25°C 0.6
fA/Hz
shutdown characteristics
PARAMETER TEST CONDITIONS
T
A
MIN TYP MAX UNIT
V
DD
= 2.7 V, 5 V,
25°C 25 30
A
I
DD(SHDN)
Supply current in shutdown mode (TLV2370,
V
DD
= 2.7 V, 5 V,
SHDN = 0 V
Full range 35
µA
I
DD(SHDN
)
Supply current in shutdown mode (TLV2370,
TLV2373, TLV2375) (per channel)
V
DD
= 15 V,
25°C 40 45
A
TLV2373, TLV2375) (per channel)
V
DD
= 15 V,
SHDN = 0 V
Full range 50
µA
t
(on)
Amplifier turnon time (see Note 2)
R
L
= 2 k
25°C 0.8 µs
t
(off)
Amplifier turnoff time (see Note 2)
R
L
= 2 k
25°C 1 µs
NOTE 2: Disable time and enable time are defined as the interval between application of the logic signal to the SHDN terminal and the point at
which the supply current has reached one half of its final value.
     
  µ   
   
SLOS270C − MARCH 2001 − REVISED DECEMBER 2003
8
WWW.TI.COM
POST OFFICE BOX 1443
HOUSTON, TEXAS 77251−1443
TYPICAL CHARACTERISTICS
Table of Graphs
FIGURE
V
IO
Input offset voltage vs Common-mode input voltage 1, 2, 3
CMRR Common-mode rejection ratio vs Frequency 4
Input bias and offset current vs Free-air temperature 5
V
OL
Low-level output voltage vs Low-level output current 6, 8, 10
V
OH
High-level output voltage vs High-level output current 7, 9, 11
V
O(PP)
Peak-to-peak output voltage vs Frequency 12
I
DD
Supply current vs Supply voltage 13
PSRR Power supply rejection ratio vs Frequency 14
A
VD
Differential voltage gain & phase vs Frequency 15
Gain-bandwidth product vs Free-air temperature 16
SR
Slew rate
vs Supply voltage 17
SR Slew rate
vs Free-air temperature
18
φ
m
Phase margin vs Capacitive load 19
V
n
Equivalent input noise voltage vs Frequency 20
Voltage-follower large-signal pulse response 21, 22
Voltage-follower small-signal pulse response 23
Inverting large-signal response 24, 25
Inverting small-signal response 26
Crosstalk vs Frequency 27
Shutdown forward & reverse isolation vs Frequency 28
I
DD(SHDN)
Shutdown supply current vs Supply voltage 29
I
DD(SHDN)
Shutdown pin leakage current vs Shutdown pin voltage 30
I
DD(SHDN)
Shutdown supply current/output voltage vs Time 31, 32
     
  µ   
   
SLOS270C − MARCH 2001 − REVISED DECEMBER 2003
9
WWW.TI.COM
POST OFFICE BOX 1443
HOUSTON, TEXAS 77251−1443
TYPICAL CHARACTERISTICS
Figure 1
−200
0
200
400
600
800
1000
0 0.4 0.8 1.2 1.6 2 2.4 2.7
INPUT OFFSET VOLTAGE
vs
COMMON-MODE INPUT VOLTAGE
V
DD
= 2.7 V
T
A
= 25°C
V
ICR
− Common-Mode Input Voltage − V
V
IO
− Input Offset Voltage − V
µ
Figure 2
−200
0
200
400
600
800
1000
012345
INPUT OFFSET VOLTAGE
vs
COMMON-MODE INPUT VOLTAGE
V
ICR
− Common-Mode Input Voltage − V
V
IO
− Input Offset Voltage − V
µ
V
DD
= 5 V
T
A
= 25 °C
Figure 3
−200
0
200
400
600
800
1000
0246810121415
INPUT OFFSET VOLTAGE
vs
COMMON-MODE INPUT VOLTAGE
V
ICR
− Common-Mode Input Voltage −V
V
IO
− Input Offset Voltage − V
µ
V
DD
=15 V
T
A
= 25 °C
Figure 4
0
20
40
60
80
100
120
10
100 1 k
10 k
100 k
1 M
COMMON-MODE REJECTION RATIO
vs
FREQUENCY
f − Frequency − Hz
CMRR − Common-Mode Rejection Ratio − dB
V
DD
= 5 V, 15 V
V
DD
= 2.7 V
Figure 5
−50
0
50
100
150
200
250
300
−40−25 −10 5 20 35 50 65 80 95 110 125
V
DD
= 2.7 V, 5 V and 15 V
V
IC
= V
DD
/2
T
A
− Free-Air Temperature − °C
INPUT BIAS/OFFSET CURRENT
vs
FREE-AIR TEMPERATURE
I
IB
− Input Bias / Offset Current − pA
/
I
IO
Figure 6
0
0.40
0.80
1.20
1.60
2
2.40
2.80
0 2 4 6 8 10 12 14 16 18 20 22 24
LOW-LEVEL OUTPUT VOLTAGE
vs
LOW-LEVEL OUTPUT CURRENT
I
OL
− Low-Level Output Current − mA
V
DD
= 2.7 V
OL
V − Low-Level Output Voltage − V
T
A
= 25 °C
T
A
= 125 °C
T
A
= 70 °C
T
A
= 0 °C
T
A
= 40 °C
Figure 7
0
0.40
0.80
1.20
1.60
2
2.40
2.80
0123456789101112
HIGH-LEVEL OUTPUT VOLTAGE
vs
HIGH-LEVEL OUTPUT CURRENT
I
OH
− High-Level Output Current − mA
V
OH
− High-Level Output Voltage − V
V
DD
= 2.7 V
T
A
= 125°C
T
A
= 70°C
T
A
= 25°C
T
A
= 0°C
T
A
=−40°C
Figure 8
0
0.50
1
1.50
2
2.50
3
3.50
4
4.50
5
0 5 10 15 20 25 30 35 40 45 50 55 60 65 70
LOW-LEVEL OUTPUT VOLTAGE
vs
LOW-LEVEL OUTPUT CURRENT
I
OL
− Low-Level Output Current − mA
V
DD
= 5 V
OL
V − Low-Level Output Voltage − V
T
A
= 125 °C
T
A
= 70 °C
T
A
= 25 °C
T
A
= 0 °C
T
A
= −40 °C
Figure 9
0
0.50
1
1.50
2
2.50
3
3.50
4
4.50
5
0 5 10 15 20 25 30 35 40 45
HIGH-LEVEL OUTPUT VOLTAGE
vs
HIGH-LEVEL OUTPUT CURRENT
I
OH
− High-Level Output Current − mA
V
OH
− High-Level Output Voltage − V
V
CC
= 5 V
T
A
= −40°C
T
A
= 0°C
T
A
= 25°C
T
A
= 70°C
T
A
= 125°C
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