7
PC3SD12NTZ Series
Forward current I
F
(mA)
Ambient temperature T
a
(°C)
0
10
20
30
40
50
60
70
30 100050
Fig.1 Forward Current vs. Ambient
Temperature
Fig.2 RMS ON-state Current vs.
Ambient Temperature
Sheet No.: D2-A07701EN
RMS ON-state current I
T
(rms) (mA)
0
25
50
75
100
125
150
175
30 0 10050
Ambient temperature T
a
(°C)
0 0.5 1 1.5 2 2.5 3
Forward current I
F
(mA)
Forward voltage V
F
(V)
1
5
10
50
100
T
a
=100°C
75°C
50°C
25°C
0°C
30°C
Fig.3 Forward Current vs. Forward Voltage Fig.4 Minimum Trigger Current vs.
Ambient Temperature
0
1
2
3
4
5
6
7
8
9
10
Minimum trigger current I
FT
(mA)
40 20 0 20 406080100
Ambient temperature T
a
(°C)
V
D
=6V
R
L
=100
Fig.6 ON-state Voltage vs.
Ambient Temperature
ON-state voltage V
T
(V)
1
2
1.8
1.6
1.4
1.2
40 20 100806040200
Ambient temperature T
a
(°C)
I
T
=100mA
1.9
1.7
1.5
1.3
1.1
Fig.5 Relative Repetitive Peak OFF-state
Voltage vs. Ambient Temperature
Relative repetitive peak OFF-state voltage
V
DRM
(T
j
=T
a
) / V
DRM
(T
j
=25°C)
0.7
1.3
1.2
1.1
1
0.9
0.8
40 20 0 20 40 60 80 100
Ambient temperature T
a
(°C)
8
PC3SD12NTZ Series
Fig.9 Turn-on Time vs. Forward Current
Sheet No.: D2-A07701EN
Repetitive peak OFF-state current I
DRM
(A)
10
10
10
8
10
6
10
9
10
7
40 20 100806040200
Ambient temperature T
a
(°C)
V
D
=600V
Remarks : Please be aware that all data in the graph are just for reference.
Fig.8 Repetitive Peak OFF-state Current vs.
Ambient Temperature
Turn-on time ton (µs)
10
100
1 000
1 10010
Forward current I
F
(mA)
V
D
=6V
R
L
=100
T
a
=25°C
Fig.7 Holding Current vs.
Ambient Temperature
Holding current I
H
(mA)
0.1
1
10
40 20 100806040200
Ambient temperature T
a
(°C)
V
D
=6V
Recommended Foot Print (reference)
9
SMT Gullwing Lead-form Wide SMT Gullwing Lead-form
2.542.54
1.7
2.2
10.2
2.542.54
1.7
2.2
8.2
(Unit : mm)
PC3SD12NTZ Series
Design Considerations
In order for the Phototriac to turn off, the triggering current (I
F
) must be 0.1mA or less.
Please refrain from using these devices in a direct drive configuration.
These Phototriac Coupler are intended to be used as triggering device for main Triacs.
Please ensure that the output rating of these devices will be sufficient for triggering the main output Triac of
your choice. Failure to do may result in malfunctions.
In phase control applications or where the Phototriac Coupler is being by a pulse signal, please ensure that
the pulse width is a minimum of 1ms.
For designs that will experience excessive noise or sudden changes in load voltage, please include an
appropriate snubber circuit as shown in the below circuit.
Please keep in mind that Sharp Phototriac Couplers incorporate superor dV/dt ratings which can often
eliminate the need for a snubber circuit.
Degradation
In general, the emission of the IRED used in Phototriac Couplers will degrade over time.
In the case where long term operation and / or constant extreme temperature fluctuations will be applied to
the devices, please allow for a worst case scenario of 50% degradation over 5years.
Therefore in order to maintain proper operation, a design implementing these Phototriac Couplers should
provide at least twice the minimum required triggering current from initial operation.
Design guide
Sheet No.: D2-A07701EN

PC3SD12NTZAF

Mfr. #:
Manufacturer:
Sharp Microelectronics
Description:
Triac & SCR Output Optocouplers Phototriac non ZC 600V 10mA
Lifecycle:
New from this manufacturer.
Delivery:
DHL FedEx Ups TNT EMS
Payment:
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