GlobalOptoisolator™
6-Pin DIP Optoisolators
Transistor Output
The H11AV1,A and H11AV2,A devices consist of a gallium arsenide infrared
emitting diode optically coupled to a monolithic silicon phototransistor detector.
•
Guaranteed 70 Volt V(BR)CEO Minimum
•
‘A’ Suffix = 0.400″ Wide Spaced Leadform (Same as ‘T’ Suffix.)
•
To order devices that are tested and marked per VDE 0884 requirements, the
suffix ”V” must be included at end of part number. VDE 0884 is a test option.
Applications
•
General Purpose Switching Circuits
•
Interfacing and coupling systems of different potentials and impedances
•
Monitor and Detection Circuits
•
Regulation and Feedback Circuits
•
Solid State Relays
H11AV1,A
H11AV2,A
6
1
STANDARD THRU HOLE
SCHEMATIC
1
6
5
4
MAXIMUM RATINGS
(TA = 25°C unless otherwise noted)
Rating
INPUT LED
Reverse Voltage
Forward Current — Continuous
LED Power Dissipation @ TA = 25°C
with Negligible Power in Output Detector
Derate above 25°C
OUTPUT TRANSISTOR
Collector–Emitter Voltage
Emitter–Base Voltage
Collector–Base Voltage
Collector Current — Continuous
Detector Power Dissipation @ TA = 25°C
with Negligible Power in Input LED
Derate above 25°C
TOTAL DEVICE
Isolation Surge Voltage(1)
(Peak ac Voltage, 60 Hz, 1 sec Duration)
Total Device Power Dissipation @ TA = 25°C
Derate above 25°C
Ambient Operating Temperature Range
Storage Temperature Range
Soldering Temperature (10 sec, 1/16″ from case)
VISO
PD
TA
Tstg
TL
7500
250
2.94
– 55 to +100
– 55 to +150
260
Vac(pk)
mW
mW/°C
°C
°C
°C
VCEO
VEBO
VCBO
IC
PD
70
7
70
150
150
1.76
Volts
Volts
Volts
mA
mW
mW/°C
VR
IF
PD
6
60
120
1.41
Volts
mA
mW
mW/°C
Symbol
Value
Unit
2
3
PIN 1.
2.
3.
4.
5.
6.
LED ANODE
LED CATHODE
N.C.
EMITTER
COLLECTOR
BASE
1. Isolation surge voltage is an internal device dielectric breakdown rating.
1.
For this test, Pins 1 and 2 are common, and Pins 4, 5 and 6 are common.
H11AV1,A H11AV2,A
ELECTRICAL CHARACTERISTICS
(TA = 25°C unless otherwise noted)(1)
Characteristic
INPUT LED
Forward Voltage (IF = 10 mA)
TA = 25°C
TA = –55°C
TA = 100°C
VF
0.8
0.9
0.7
—
—
1.15
1.3
1.05
—
18
1.5
1.7
1.4
10
—
Volts
Symbol
Min
Typ
(1)
Max
Unit
Reverse Leakage Current (VR = 6 V)
Capacitance (V = 0 V, f = 1 MHz)
OUTPUT TRANSISTOR
Collector–Emitter Dark Current (VCE = 10 V)
Collector–Base Dark Current (VCB = 10 V)
Collector–Emitter Breakdown Voltage (IC = 1 mA)
Collector–Base Breakdown Voltage (IC = 100
µA)
Emitter–Collector Breakdown Voltage (IE = 100
µA)
DC Current Gain (IC = 2 mA, VCE = 10 V) (Typical Value)
Collector–Emitter Capacitance (f = 1 MHz, VCE = 10 V)
COUPLED
Output Collector Current (IF = 10 mA, VCE = 10 V)
H11AV1, H11AV1A
H11AV2, H11AV2A
Collector–Emitter Saturation Voltage (IC = 2 mA, IF = 20 mA)
Turn–On Time (IC = 2 mA, VCC = 10 V, RL = 100
Ω)
(3)
Turn–Off Time (IC = 2 mA, VCC = 10 V, RL = 100
Ω)
(3)
Isolation Voltage (f = 60 Hz, t = 1 sec)(4)
Isolation Resistance (V = 500 V)(4)
Isolation Capacitance (V = 0 V, f = 1 MHz)(4)
1.
2.
3.
4.
IR
CJ
µA
pF
ICEO
ICBO
V(BR)CEO
V(BR)CBO
V(BR)ECO
hFE
CCE
IC (CTR)(2)
—
—
70
70
7
—
—
5
0.5
100
100
8
500
4.5
50
—
—
—
—
—
—
nA
nA
Volts
Volts
Volts
—
pF
mA (%)
10 (100)
5 (50)
15 (150)
10 (100)
0.15
5
4
—
—
0.2
30 (300)
—
0.4
15
15
—
—
0.5
Volts
µs
µs
Vac(pk)
Ω
pF
VCE(sat)
ton
toff
VISO
RISO
CISO
—
—
—
7500
1011
—
Always design to the specified minimum/maximum electrical limits (where applicable).
Current Transfer Ratio (CTR) = IC/IF x 100%.
For test circuit setup and waveforms, refer to Figure 11.
For this test, Pins 1 and 2 are common, and Pins 4, 5 and 6 are common.
TYPICAL CHARACTERISTICS
2
VF, FORWARD VOLTAGE (VOLTS)
PULSE ONLY
PULSE OR DC
1.8
I C , OUTPUT COLLECTOR CURRENT (NORMALIZED)
10
NORMALIZED TO:
IF = 10 mA
1
1.6
1.4
TA = –55°C
25°C
100°C
1
10
100
IF, LED FORWARD CURRENT (mA)
1000
1.2
1
0.1
0.01
0.1
0.2
0.5
1
2
5
10
20
IF, LED INPUT CURRENT (mA)
50 100
Figure 1. LED Forward Voltage versus Forward Current
Figure 2. Output Current versus Input Current
H11AV1,A H11AV2,A
14
I
C, COLLECTOR CURRENT (mA)
12
10
8
6
5 mA
4
2
0
0
1
3
4
5
6
7
8
9
VCE, COLLECTOR–EMITTER VOLTAGE (VOLTS)
2
10
2 mA
1 mA
IF = 10 mA
I C , OUTPUT COLLECTOR CURRENT (NORMALIZED)
7
5
2
1
0.7
0.5
0.2
0.1
–60
–40
NORMALIZED TO TA = 25°C
–20
0
20
40
60
80
TA, AMBIENT TEMPERATURE (°C)
100
Figure 3. Collector Current versus
Collector–Emitter Voltage
ICEO, COLLECTOR–EMITTER DARK CURRENT (NORMALIZED)
Figure 4. Output Current versus
Ambient Temperature
100
103
102
101
100
NORMALIZED TO:
VCE = 10 V
TA = 25°C
VCE = 70 V
30 V
10 V
t, TIME (
µ
s)
50
20
10
RL = 1000
5
RL = 100
2
1
0.1
VCC = 10 V
{
{
tf
tr
tf
tr
10–1
0
20
40
60
TA, AMBIENT TEMPERATURE (°C)
80
100
0.2
0.5
1
2
5
10
20
IF, LED INPUT CURRENT (mA)
50 100
Figure 5. Dark Current versus
Ambient Temperature
Figure 6. Rise and Fall Times
(Typical Values)
100
50
t onTURN–ON TIME ( s)
,
µ
20
10
5
10
2
1
0.1
0.2
0.5
1
2
5
10
20
IF, LED INPUT CURRENT (mA)
50 100
VCC = 10 V
t offTURN–OFF TIME ( s)
,
µ
100
50
20
10
5
2
1
0.1
0.2
0.5
RL = 1000
VCC = 10 V
RL = 1000
100
100
10
1
2
5
10
20
IF, LED INPUT CURRENT (mA)
50 100
Figure 7. Turn–On Switching Times
Figure 8. Turn–Off Switching Times
H11AV1,A H11AV2,A
IC TYPICAL COLLECTOR CURRENT (mA)
,
4
IF = 0
3
20
IB = 8
µA
7
µA
6
µA
5
µA
4
µA
3
µA
C, CAPACITANCE (pF)
18
16
14
12
10
8
6
4
1
µA
0
2
4
6
8
10
12
14
16
18
VCE, COLLECTOR–EMITTER VOLTAGE (VOLTS)
20
2
0
0.5
0.1
0.2
0.5
1
2
5
V, VOLTAGE (VOLTS)
10
20
50
CCE
CEB
CCB
CLED
f = 1 MHz
2
1
2
µA
Figure 9. DC Current Gain (Detector Only)
Figure 10. Capacitances versus Voltage
TEST CIRCUIT
VCC = 10 V
IC
INPUT
INPUT CURRENT ADJUSTED
TO ACHIEVE IC = 2 mA.
RL = 100
Ω
10%
OUTPUT
WAVEFORMS
INPUT PULSE
OUTPUT PULSE
90%
tr
ton
tf
toff
Figure 11. Switching Time Test Circuit and Waveforms
H11AV1,A H11AV2,A
PACKAGE DIMENSIONS
–A–
6
4
NOTES:
1. DIMENSIONING AND TOLERANCING PER ANSI
Y14.5M, 1982.
2. CONTROLLING DIMENSION: INCH.
3. DIMENSION L TO CENTER OF LEAD WHEN
FORMED PARALLEL.
DIM
A
B
C
D
E
F
G
J
K
L
M
N
INCHES
MIN
MAX
0.320
0.350
0.240
0.260
0.115
0.200
0.016
0.020
0.040
0.070
0.010
0.014
0.100 BSC
0.008
0.012
0.100
0.150
0.300 BSC
0
_
15
_
0.015
0.100
MILLIMETERS
MIN
MAX
8.13
8.89
6.10
6.60
2.93
5.08
0.41
0.50
1.02
1.77
0.25
0.36
2.54 BSC
0.21
0.30
2.54
3.81
7.62 BSC
0
_
15
_
0.38
2.54
–B–
1
3
F
4 PL
N
C
L
–T–
SEATING
PLANE
K
G
J
6 PL
0.13 (0.005)
T A
M
M
E
6 PL
D
6 PL
0.13 (0.005)
M
M
T B
M
A
M
B
M
STYLE 1:
PIN 1.
2.
3.
4.
5.
6.
ANODE
CATHODE
NC
EMITTER
COLLECTOR
BASE
THRU HOLE
–A–
6
1
4
–B–
3
S
NOTES:
1. DIMENSIONING AND TOLERANCING PER ANSI
Y14.5M, 1982.
2. CONTROLLING DIMENSION: INCH.
INCHES
MIN
MAX
0.320
0.350
0.240
0.260
0.115
0.200
0.016
0.020
0.040
0.070
0.010
0.014
0.100 BSC
0.020
0.025
0.008
0.012
0.006
0.035
0.320 BSC
0.332
0.390
MILLIMETERS
MIN
MAX
8.13
8.89
6.10
6.60
2.93
5.08
0.41
0.50
1.02
1.77
0.25
0.36
2.54 BSC
0.51
0.63
0.20
0.30
0.16
0.88
8.13 BSC
8.43
9.90
F
4 PL
H
C
L
–T–
G
E
6 PL
D
6 PL
0.13 (0.005)
M
J
K
6 PL
0.13 (0.005)
T A
M
M
SEATING
PLANE
T B
M
A
M
B
M
DIM
A
B
C
D
E
F
G
H
J
K
L
S
SURFACE MOUNT