200鈩?/div>
Response Time Difference between Outputs
(t
pd
of +V
IN1
) 鈭?(t
pd
of 鈭扸
IN2
)
(t
pd
of +V
IN2
) 鈭?(t
pd
of 鈭扸
IN1
)
(t
pd
of +V
IN1
) 鈭?(t
pd
of +V
IN2
)
(t
pd
of 鈭扸
IN1
) 鈭?(t
pd
of 鈭扸
IN2
)
Input Resistance
Input Capacitance
Average Temperature Coefficient of
Input Offset Voltage
Average Temperature Coefficient of
Input Offset Current
Common Mode Input Voltage Range
Differential Input Voltage Range
Output High Voltage (Either Output)
Output Low Voltage (Either Output)
Positive Supply Current
Negative Supply Current
I
OUT
= 鈭?20 碌A(chǔ), V
S
=
鹵
4.5V
I
SINK
= 6.4 mA
V
S
=
鹵
6.5V
V
S
=
鹵
6.5V
V
S
=
鹵
6.5V
鹵
4
鹵
5
2.4
鹵
4.5
3
0.25
18
鈭?
0.4
32
鈭?6
V
mA
mA
Note 2:
Response time measured from the 50% point of a 30 mVp-p 10 MHz sinusoidal input to the 50% point of the output.
Note 3:
Response time measured from the 50% point of a 2 Vp-p 10 MHz sinusoidal input to the 50% point of the output.
Note 4:
Response time measured from the start of a 100 mV input step with 5 mV overdrive to the time when the output crosses the logic threshold.
Note 5:
Typical thermal impedances are as follows:
Cavity DIP (J):
Molded DIP (N):
胃
jA
胃
jA
135藲C/W
130藲C/W
胃
jC
Header (H)
胃
jA
165藲C/W
67藲C/W
25藲C/W
(Still Air)
(400 LF/min Air Flow)
Note 6:
The device may be damaged if used beyond the maximum ratings.
Note 7:
Measurements are made in AC Test Circuit, Fanout = 1
Note 8:
Refer to RETS 160X for LM160H, LM160J-14 and LM160J military specifications.
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