HCPL-7601-000E Avago Technologies US Inc., HCPL-7601-000E Datasheet - Page 11

OPTOCOUPLER LOG-OUT 10MBD 8-DIP

HCPL-7601-000E

Manufacturer Part Number
HCPL-7601-000E
Description
OPTOCOUPLER LOG-OUT 10MBD 8-DIP
Manufacturer
Avago Technologies US Inc.
Datasheet

Specifications of HCPL-7601-000E

Package / Case
8-DIP (0.300", 7.62mm)
Voltage - Isolation
3750Vrms
Number Of Channels
1, Unidirectional
Current - Output / Channel
50mA
Data Rate
10MBd
Propagation Delay High - Low @ If
57ns @ 4mA
Current - Dc Forward (if)
20mA
Input Type
DC
Output Type
Open Collector
Mounting Type
Through Hole
Isolation Voltage
3750 Vrms
Maximum Continuous Output Current
50 mA
Maximum Fall Time
0.01 us
Maximum Forward Diode Current
20 mA
Minimum Forward Diode Voltage
1.2 V
Output Device
Logic Gate Photo IC
Configuration
1 Channel
Maximum Baud Rate
10 MBd(Typ)
Maximum Forward Diode Voltage
1.85 V
Maximum Reverse Diode Voltage
3 V
Maximum Power Dissipation
250 mW
Maximum Operating Temperature
+ 85 C
Minimum Operating Temperature
- 40 C
No. Of Channels
1
Optocoupler Output Type
Transistor
Input Current
10mA
Output Voltage
7V
Opto Case Style
DIP
No. Of Pins
8
Common Mode Ratio
5000
Rohs Compliant
Yes
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Lead Free Status / RoHS Status
Lead free / RoHS Compliant, Lead free / RoHS Compliant
Other names
516-1687-5

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
HCPL-7601-000E
Manufacturer:
AVAGO
Quantity:
10 000
Part Number:
HCPL-7601-000E
Manufacturer:
AVAGO/安华高
Quantity:
20 000
Figure 12. Pulse width distortion vs. input
current.
Figure 7. Test circuit for t
Figure 9. t
temperature.
11
MONITORING
PULSE GEN.
t
f
Z
= t
O
100
-10
-20
-30
-40
-50
-60
-70
90
80
70
60
50
40
30
30
20
10
= 50
r
0
-50
= 5 ns
INPUT
*C
NODE
0
OUTPUT
L
PHL
V
R
T
INPUT
-30
IS APPROXIMATELY 15 pF WHICH INCLUDES
PROBE AND STRAY WIRING CAPACITANCE.
A
CC
L
T
– Propagation delay vs.
I
= 350 – 4 k
= 25° C
I
I
2
I
V
F
F
F
F
A
= 5 V
O
R
– INPUT CURRENT – mA
= 2 mA
= 4 mA
I
F
-10
– TEMPERATURE – °C
M
4
0
10
t
PHL
1
2
3
4
PHL
6
R
R
R
V
T
30
L
L
L
A
and t
CC
= 350
= 1 k
= 4 k
= 25° C
8
= 5 V
50
PLH
.
10
70
GND
V
CC
12
t
90
PLH
8
7
6
5
Figure 10. Propagation delay vs. input
current.
Figure 13. Rise and fall time vs. temperature.
120
110
100
330
320
310
300
290
90
80
70
60
50
40
30
60
40
20
0.1µF
BYPASS
0
-60 -40 -20
1
1.5 V
I
50% I
F
V
I
2
F
*C
CC
T
T
T
PLH
PLH
= 2 – 4 mA
I
R
R
R
R
F
L
PHL
+5 V
3
= 5.0 V
F
L
L
L
L
– INPUT CURRENT – mA
T
= 4 k
= 1 k
= 350
= 350 , 1 k , 4 k
A
@ R
@ R
@ R
4
R
– TEMPERATURE – °C
L
0
L
L
5
L
OUTPUT V
MONITORING
NODE
= 4 k
= 350
= 350 – 4 k
20
6
T
PLH
7
40
t
t
FALL
RISE
@ R
O
8
V
T
60
A
CC
L
9
= 25° C
= 1 k
= 5 V
80 100
10
11
Figure 8. t
temperature.
Figure 11. Pulse width distortion vs.
temperature.
120
110
100
-30
-15
-45
-60
90
80
70
60
50
40
30
30
15
0
-50
-50
PLH
I
I
I
V
T
F
F
F
-30 -10
-30
A
CC
= 2 mA, R
= 4 mA, R
= 4 mA, R
– Propagation delay vs.
T
I
I
I
T
F
F
F
A
A
= 25° C
= 2-4 mA, R
= 2-4 mA, R
= 2-4 mA, R
= 5 V
– TEMPERATURE – °C
-10
– TEMPERATURE – °C
I
I
F
F
0
0
= 2 mA, R
= 2 mA, R
L
L
L
10
10
I
= 1 k
F
= 1 k
= 4 k
= 4 mA, R
L
L
L
30
30
= 4 k
= 1 k
= 350
L
L
= 4 k
= 350
50
50
L
= 350
70
70
90
90

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