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S201S06F
Solid State Relay, S201S06 Series, Zero Cross, 3 A, 240 Vrms, PCB, Through Hole, Zero Crossing
⚠️ Reference pricing provided. In case of supply shortages, we will connect you with our trusted procurement partners to ensure your project's continuity.
- Manufacturer: SHARP
- Product type:
- Contact Configuration:-; Load Current:3A; Relay Mounting:PCB; Relay Terminals:Through Hole; Operating Voltage Min:80Vrms; Operating Voltage Max:240Vrms; Control Voltage Min:-; Control Voltage Max:-; S
- Load Current: 3A
- Product Range: -
- Relay Mounting: PCB
- Switching Mode: Zero Crossing
- Relay Terminals: Through Hole
- Control Voltage Max: -
- Control Voltage Min: -
- Contact Configuration: -
- Operating Voltage Max: 240Vrms
- Operating Voltage Min: 80Vrms
| Delivery and price | |
|---|---|
| Units per pack | 1000 |
| Price | 2.28 € |
| Current stock | 10+ |
| Lead time | 30 days |
**S101S06V Series S201S06V Series**
## **S101S06V Series S201S06V Series**
## **IT(rms)** ≤ **3A, Zero Cross type SIP 4pin Triac output SSR**
> ∗Non-zero cross type is also available. ( **S101S05V Series** )
## ■ **Description**
**S101S06V Series** and **S201S06V Series** Solid State Relays (SSR) are an integration of an infrared emitting diode (IRED), a Phototriac Detector and a main output Triac. These devices are ideally suited for controlling high voltage AC loads with solid state reliability while providing 3.0kV isolation (Viso(rms)) from input to output.
## ■ **Features**
1. Output current, IT(rms)≤3.0A
2. Zero crossing functionary (VOX : MAX. 35V)
3. 4 pin SIP package
4. High repetitive peak off-state voltage
## ■ **Agency approvals/Compliance**
1. Recognized by UL508, file No. E94758 (as models No. **S101S06V/S201S06V** )
2. Approved by CSA 22.2 No.14, file No. LR63705 (as models No. **S101S06V/S201S06V** )
3. Package resin : UL flammability grade (94V-0)
## ■ **Applications**
1. Isolated interface between high voltage AC devices and lower voltage DC control circuitry.
2. Switching motors, fans, heaters, solenoids, and
- valves.
3. Power control in applications such as lighting and temperature control equipment.
- (VDRM : 600V, **S201S06V Series** )
- (VDRM : 400V, **S101S06V Series** )
5. High isolation voltage between input and output (Viso(rms) : 3.0kV)
6. Lead-free terminal components are also available (see Model Line-up section in this datasheet)
7. Screw hole for heat sink
PC
Notice The content of data sheet is subject to change without prior notice. In the absence of confirmation by device specification sheets, SHARP takes no responsibility for any defects that may occur in equipment using any SHARP devices shown in catalogs, data books, etc. Contact SHARP in order to obtain the latest device specification sheets before using any SHARP device.
Sheet No.:D4-A02201EN Date Apr. 28. 2004 © SHARP Corporation
1
**S101S06V Series S201S06V Series**
## ■ **Internal Connection Diagram**
**==> picture [177 x 55] intentionally omitted <==**
**----- Start of picture text -----**<br>
1 Output (Triac T2)<br>2 Output (Triac T1)<br>3 Input (+)<br>4 Input (−)<br>1 2 3 4<br>**----- End of picture text -----**<br>
Zero Crossing Circuit
## ■ **Outline Dimensions**
(Unit : mm)
**==> picture [518 x 286] intentionally omitted <==**
**----- Start of picture text -----**<br>
S101S06V S201S06V<br>18.5 [±][0.2] 18.5 [±][0.2]<br>16.4 [±][0.3] 16.4 [±][0.3]<br>φ3.2 [±][0.2] 5.5 [±][0.2] φ3.2 [±][0.2] 5.5 [±][0.2]<br>Common to pin No.1 Common to pin No.1 Common to pin No.1 Common to pin No.1<br>CSA mark CSA mark<br>Epoxy resin Epoxy resin<br>UL mark S101S06V UL mark S201S06V<br>Model No. Model No.<br>∗ 3A125VAC +− Date code (2 digit) ∗ 3A265VAC +− Date code (2 digit)<br>4-1.1 [±][0.2] 4-1.1 [±][0.2]<br>4-1.25 [±][0.3] 4-1.25 [±][0.3]<br>4-0.8 [±][0.2] 4-0.8 [±][0.2]<br>1 2 3 4 1 2 3 4<br>(5.08) (7.62) (2.54) 0.6 [±][0.1] (1.4) (5.08) (7.62) (2.54) 0.6 [±][0.1] (1.4)<br>Product mass : approx. 6.3g Product mass : approx. 6.3g<br>0.2±3.2 0.3±5.0 0.2±3.2 0.3±5.0<br>0.2± 0). 0.2± 0).<br>19.6 19.6<br>(36 (36<br>MAX. MIN. MAX. MIN.<br>0.2 MAX. 11.2 0.2 MAX. 11.2<br>4.2 4.2<br>**----- End of picture text -----**<br>
∗ : Do not allow external connection.
( ) : Typical dimensions
Sheet No.: D4-A02201EN
2
**S101S06V Series S201S06V Series**
## Date code (2 digit)
|Date code (2 digit)|Date code (2 digit)|Date code (2 digit)|Date code (2 digit)|||
|---|---|---|---|---|---|
|1st digit||||2nd digit||
|Year ofproduction||||Month ofproduction||
|A.D.|Mark|A.D|Mark|Month|Mark|
|1990|A|2002|P|January|1|
|1991|B|2003|R|February|2|
|1992|C|2004|S|March|3|
|1993|D|2005|T|April|4|
|1994|E|2006|U|May|5|
|1995|F|2007|V|June|6|
|1996|H|2008|W|July|7|
|1997|J|2009|X|August|8|
|1998|K|2010|A|September|9|
|1999|L|2011|B|October|O|
|2000|M|2012|C|November|N|
|2001|N|···|···|December|D|
repeats in a 20 year cycle
## Country of origin
Japan
## Rank mark
There is no rank mark indicator and currently there are no rank offered for this device.
Sheet No.: D4-A02201EN
3
**S101S06V Series S201S06V Series**
## ■ **Absolute Maximum Ratings**
(Ta=25˚C)
||Parameter|Parameter|Symbol|Rating|Unit|
|---|---|---|---|---|---|
|Input|Forward current||IF|*3<br>50|mA|
||Reverse voltage||VR|6|V|
|Output|RMS ON-state current||IT(rms)|*3<br>3|A|
||Peak one cycle surge current||Isurge|*4<br>30|A|
||Repetitive<br>peak OFF-state voltage|**S101S06V**|VDRM|400|V|
|||**S201S06V**||600||
||Non-Repetitive<br>peak OFF-state voltage|**S101S06V**|VDSM|400|V|
|||**S201S06V**||600||
||Critical rate of rise of ON-state current||dIT/dt|40|A/µs|
||Operating frequency||f|45to 65|Hz|
|Isolation voltage<br>*1|||Viso(rms)|3.0|kV|
|Operating temperature|||Topr|−25 to+100|˚C|
|Storage temperature|||Tstg|−30 to+125|˚C|
|Solderingtemperature<br>*2|||Tsol|260|˚C|
**==> picture [63 x 108] intentionally omitted <==**
**----- Start of picture text -----**<br>
Soldering area<br>1.5mm<br>**----- End of picture text -----**<br>
*1 40 to 60%RH, AC for 1minute, f=60Hz
- *2 For 10s
*3 Refer to Fig.1, Fig.2
*4 f=60Hz sine wave, Tj=25˚C start
## ■ **Electro-optical Characteristics**
(Ta=25˚C)
||Parameter|Parameter|Symbol|Conditions|MIN.|TYP.|MAX.|Unit|
|---|---|---|---|---|---|---|---|---|
|Input|Forward voltage||VF|IF=20mA|−|1.2|1.4|V|
||Reverse current||IR|VR=3V|−|−|100|µA|
|Output|Repetitive peak OFF-state current||IDRM|VD=VDRM|−|−|100|µA|
||ON-state voltage||VT(rms)|IT(rms)=1.5A, Resistance load, IF=20mA|−|−|1.5|V|
||Holding current||IH|−|−|−|50|mA|
||Critical rate of rise of OFF-state voltage||dV/dt|VD=2/3•VDRM|30|−|−|V/µs|
||Critical rate of rise of OFF-state voltage at commutaion||(dV/dt)c|Tj=125˚C, VD=2/3•VDRM, dIT/dt=−1.5A/ms|4|−|−|V/µs|
|Transfer<br>charac-<br>teristics|Minimum trigger current||IFT|VD=6V, RL=30Ω|−|−|15|mA|
||Isolation resistance||RISO|DC500V, 40 to 60%RH|1010|−|−|Ω|
||Zero cross voltage||VOX|IF=15mA|−|−|35|V|
||Turn-on time|**S101S06V**|ton|VD(rms)=100V, AC50Hz<br>IT(rms)=1.5A, Resistance load, IF=20mA|−|−|10|ms|
|||**S201S06V**||VD(rms)=200V, AC50Hz<br>IT(rms)=1.5A, Resistance load, IF=20mA|−|−|10||
||Turn-off time|**S101S06V**|toff|VD(rms)=100V, AC50Hz<br>IT(rms)=1.5A, Resistance load, IF=20mA|−|−|10|ms|
|||**S201S06V**||VD(rms)=200V, AC50Hz<br>IT(rms)=1.5A, Resistance load, IF=20mA|−|−|10||
|Thermal resistance|||Rth(j-c)|Between junction and case|−|6|−|˚C/W|
||||Rth(j-a)|Betweenjunction and ambient|−|45|−||
Sheet No.: D4-A02201EN
4
**S101S06V Series S201S06V Series**
## ■ **Model Line-up (1) (Lead-free terminal components)**
|Shipping Package|Case|VDRM<br>[V]|IFT[mA]<br>(VD=6V,<br>RL=30Ω)|
|---|---|---|---|
||200pcs/case|||
|Model No.|**S101S06F**|400|MAX.15|
||**S201S06F**|600|MAX.15|
## ■ **Model Line-up (2) (Lead solder plating components)**
|Shipping Package|Case|VDRM<br>[V]|IFT[mA]<br>(VD=6V,<br>RL=30Ω)|
|---|---|---|---|
||200pcs/case|||
|Model No.|**S101S06V**|400|MAX.15|
||**S201S06V**|600|MAX.15|
Please contact a local SHARP sales representative to see the actual status of the production.
Sheet No.: D4-A02201EN
5
**S101S06V Series S201S06V Series**
## **Fig.1 Forward Current vs. Ambient Temperature**
**==> picture [200 x 422] intentionally omitted <==**
**----- Start of picture text -----**<br>
70<br>60<br>50<br>40<br>30<br>20<br>10<br>0<br>−25 0 25 50 75 100 125<br>Ambient temperature Ta (˚C)<br>Fig.2 RMS ON-state Current vs.<br>Ambient Temperature<br>5<br>4<br>3<br>(2) (1)<br>2<br>(3)<br>1<br>0<br>−25 0 25 50 75 100 125<br>Ambient temperature Ta (˚C)<br>Forward current I (mA)F<br>(rms)(A)<br>T<br>RMS ON-state current I<br>**----- End of picture text -----**<br>
## **Fig.2 RMS ON-state Current vs.**
- (1) With heat sink (100×100×2mm Al plate)
- (2) With heat sink (50×50×2mm Al plate)
- (3) Without heat sink
- (Note) In natural cooling condition, please locate Al plate vertically, spread the thermal conductive silicone grease on the touch surface of the device and tighten up the device in the center of Al plate at the torque of 0.4N • m.
## **Fig.3 RMS ON-state Current vs. Case Temperature**
## **Fig.4 Forward Current vs. Forward Voltage**
**==> picture [469 x 190] intentionally omitted <==**
**----- Start of picture text -----**<br>
5 100<br>4 Ta=75˚C<br>50˚C<br>10<br>25˚C<br>3<br>0˚C<br>−25˚C<br>2<br>1<br>1<br>0 0.1<br>−25 0 25 50 75 100 125 0.6 0.8 1.0 1.2 1.4 1.6 1.8<br>Case temperature Tc (˚C) Forward voltage VF (V)<br>(rms)(A)<br>T Forward current I (mA)F<br>RMS ON-state current I<br>**----- End of picture text -----**<br>
Sheet No.: D4-A02201EN
6
**S101S06V Series S201S06V Series**
## **Fig.5 Surge Current vs. Power-on Cycle**
**==> picture [199 x 188] intentionally omitted <==**
**----- Start of picture text -----**<br>
60<br>f=60Hz<br>Tj=25˚C Start<br>50<br>40<br>30<br>20<br>10<br>0<br>1 10 100<br>Power-on cycle (Times)<br> (A)<br>surge<br>Surge current I<br>**----- End of picture text -----**<br>
## **Fig.6 Maximum ON-state Power Dissipation vs. RMS ON-state Current**
**==> picture [195 x 189] intentionally omitted <==**
**----- Start of picture text -----**<br>
6<br>Ta=25˚C<br>5<br>4<br>3<br>2<br>1<br>0 1 2 3 4 5 6<br>RMS ON-state current IT (rms)(A)<br>Maximum ON-state power dissipation (W)<br>**----- End of picture text -----**<br>
## **Fig.7 Minimum Trigger Current vs. Ambient Temperature**
**==> picture [199 x 188] intentionally omitted <==**
**----- Start of picture text -----**<br>
12<br>VD=6V<br>RL=30Ω<br>10<br>8<br>6<br>4<br>2<br>0<br>−25 0 25 50 75 100 125<br>Ambient temperature Ta (˚C)<br> (mA)<br>FT<br>Minimum trigger current I<br>**----- End of picture text -----**<br>
## **Fig.8 Repetitive Peak OFF-state Current vs. Ambient Temperature**
**==> picture [199 x 191] intentionally omitted <==**
**----- Start of picture text -----**<br>
10 [−][3]<br>VD=600V<br>10 [−][4]<br>10 [−][5]<br>10 [−][6]<br>10 [−][7]<br>10 [−][8]<br>10 [−][9]<br>−25 0 25 50 75 100 125<br>Ambient temperature Ta (˚C)<br> (A)<br>DRM<br>Repetitive peak OFF-state current I<br>**----- End of picture text -----**<br>
Remarks : Please be aware that all data in the graph are just for reference.
Sheet No.: D4-A02201EN
7
**S101S06V Series S201S06V Series**
## ■ **Design Considerations**
## ● **Recommended Operating Conditions**
||Parameter|Parameter|Symbol|Conditions|MIN.|MAX.|Unit|
|---|---|---|---|---|---|---|---|
|Input|Input signal current at ON state||IF(ON)|−|25|35|mA|
||Input signal current at OFF state||IF(OFF)|−|0|0.1|mA|
|Output|Load supply voltage|**S101S06V**|VOUT(rms)|−|80|120|V|
|||**S201S06V**|||80|240||
||Load supply current||IOUT(rms)|Locate snubber circuit between output terminals<br>(Cs=0.022µF, Rs=47Ω)|0.1|IT(rms)<br>×80%(∗)|mA|
||Frequency||f|−|47|63|Hz|
|Operatingtemperature|||Topr|−|−20|80|˚C|
([∗] ) See Fig.2 about derating curve (IT(rms) vs. ambient temperature).
## ● **Design guide**
In order for the SSR to turn off, the triggering current (lF) must be 0.1mA or less.
When the input current (IF) is below 0.1mA, the output Triac will be in the open circuit mode. However, if the voltage across the Triac, VD, increases faster than rated dV/dt, the Triac may turn on. To avoid this situation, please incorporate a snubber circuit. Due to the many different types of load that can be driven, we can merely recommend some circuit vales to start with : Cs=0.022µF and Rs=47Ω. The operation of the SSR and snubber circuit should be tested and if unintentional switching occurs, please adjust the snubber circuit component values accordingly.
When making the transition from On to Off state, a snubber circuit should be used ensure that sudden drops in current are not accompanied by large instantaneous changes in voltage across the Triac. This fast change in voltage is brought about by the phase difference between current and voltage. Primarily, this is experienced in driving loads which are inductive such as motors and solenoids. Following the procedure outlined above should provide sufficient results.
For over voltage protection, a Varistor may be used.
Any snubber or Varistor used for the above mentioned scenarios should be located as close to the main output triac as possible.
Particular attention needs to be paid when utilizing SSRs that incorporate zero crossing circuitry. If the phase difference between the voltage and the current at the output pins is large enough, zero crossing type SSRs cannot be used. The result, if zero crossing SSRs are used under this condition, is that the SSR may not turn on and off irregardless of the input current. In this case, only a non zero cross type SSR should be used in combination with the above mentioned snubber circuit selection process.
The load current should be within the bounds of derating curve. (Refer to Fig.2) Also, please use the optional heat sink when necessary.
In case the optional heat sink is used and the isolation voltage between the device and the optional heat sink is needed, please locate the insulation sheet between the device and the heat sink.
When the optional heat sink is equipped, please set up the M3 screw-fastening torque at 0.3 to 0.5N•m. In order to dissipate the heat generated from the inside of device effectively, please follow the below suggestions.
Sheet No.: D4-A02201EN
8
**S101S06V Series S201S06V Series**
- (a) Make sure there are no warps or bumps on the heat sink, insulation sheet and device surface.
- (b) Make sure there are no metal dusts or burrs attached onto the heat sink, insulation sheet and device surface.
- (c) Make sure silicone grease is evenly spread out on the heat sink, insulation sheet and device surface.
Silicone grease to be used is as follows;
1) There is no aged deterioration within the operating temperature ranges.
- 2) Base oil of grease is hardly separated and is hardly permeated in the device.
- 3) Even if base oil is separated and permeated in the device, it should not degrade the function of a device.
Recommended grease : G-746 (Shin-Etsu Chemical Co., Ltd.)
: G-747 (Shin-Etsu Chemical Co., Ltd.) : SC102 (Dow Corning Toray Silicone Co., Ltd.)
In case the optional heat sink is screwed up, please solder after screwed.
In case of the lead frame bending, please keep the following minimum distance and avoid any mechanical stress between the base of terminals and the molding resin.
4.4mm MIN.
Some of AC electromagnetic counters or solenoids have built-in rectifier such as the diode.
In this case, please use the device carefully since the load current waveform becomes similar with rectangular waveform and this results may not make a device turn off.
## ● **Degradation**
In general, the emission of the IRED used in SSR 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, the initial triggering current should be designed in consideration of degradation.
## ● **Standard Circuit**
**==> picture [306 x 103] intentionally omitted <==**
**----- Start of picture text -----**<br>
S101S06V<br>S201S06V<br>R1<br>+VCC 3 1 Load<br>D1 SSR ZS<br>AC Line<br>V1 4 2<br>Tr1<br>ZS : Surge absorption circuit (Snubber circuit)<br>**----- End of picture text -----**<br>
✩ For additional design assistance, please review our corresponding Optoelectronic Application Notes.
Sheet No.: D4-A02201EN
9
**S101S06V Series S201S06V Series**
## ■ **Manufacturing Guidelines**
## ● **Soldering Method**
## Flow Soldering (No solder bathing)
Flow soldering should be completed below 260˚C and within 10s.
Preheating is within the bounds of 100 to 150˚C and 30 to 80s. Please solder within one time.
## Other notices
Please test the soldering method in actual condition and make sure the soldering works fine, since the impact on the junction between the device and PCB varies depending on the tooling and soldering conditions.
Sheet No.: D4-A02201EN
10
**S101S06V Series S201S06V Series**
## ● **Cleaning instructions**
## Solvent cleaning :
Solvent temperature should be 45˚C or below. Immersion time should be 3minutes or less.
## Ultrasonic cleaning :
The impact on the device varies depending on the size of the cleaning bath, ultrasonic output, cleaning time, size of PCB and mounting method of the device.
Therefore, please make sure the device withstands the ultrasonic cleaning in actual conditions in advance of mass production.
## Recommended solvent materials :
Ethyl alcohol, Methyl alcohol and Isopropyl alcohol.
In case the other type of solvent materials are intended to be used, please make sure they work fine in actual using conditions since some materials may erode the packaging resin.
## ● **Presence of ODC**
This product shall not contain the following materials.
And they are not used in the production process for this device.
Regulation substances : CFCs, Halon, Carbon tetrachloride, 1.1.1-Trichloroethane (Methylchloroform) Specific brominated flame retardants such as the PBBOs and PBBs are not used in this product at all.
Sheet No.: D4-A02201EN
11
**S101S06V Series S201S06V Series**
## ■ **Package specification**
## Package materials
Packing case : Corrugated cardboard
Partition : Corrugated cardboard
Pad : Corrugated cardboard
Cushioning material : Polyethylene
Molt plane : Urethane
## Package method
The product should be located after the packing case is partitioned and protected inside by 4 pads. Each partition should have 5 products with the lead upward.
Cushioning material and molt plane should be located after all products are settled (1 packing contains 200 pcs).
## Package composition
**==> picture [396 x 341] intentionally omitted <==**
**----- Start of picture text -----**<br>
Molt plane<br>Cushioning material<br>Product<br>Pad<br>Partition<br>Packing case<br>**----- End of picture text -----**<br>
Sheet No.: D4-A02201EN
12
**S101S06V Series S201S06V Series**
## ■ **Important Notices**
· The circuit application examples in this publication are provided to explain representative applications of SHARP devices and are not intended to guarantee any circuit design or license any intellectual property rights. SHARP takes no responsibility for any problems related to any intellectual property right of a third party resulting from the use of SHARP's devices.
· Contact SHARP in order to obtain the latest device specification sheets before using any SHARP device. SHARP reserves the right to make changes in the specifications, characteristics, data, materials, structure, and other contents described herein at any time without notice in order to improve design or reliability. Manufacturing locations are also subject to change without notice.
· Observe the following points when using any devices in this publication. SHARP takes no responsibility for damage caused by improper use of the devices which does not meet the conditions and absolute maximum ratings to be used specified in the relevant specification sheet nor meet the following conditions:
(i) The devices in this publication are designed for use in general electronic equipment designs such as:
- --- Personal computers
- --- Office automation equipment
- --- Telecommunication equipment [terminal]
- --- Test and measurement equipment
- --- Industrial control
- with equipment that requires higher reliability such as:
- --- Transportation control and safety equipment (i.e., aircraft, trains, automobiles, etc.)
- --- Traffic signals
- --- Gas leakage sensor breakers
- --- Alarm equipment
- --- Various safety devices, etc.
(iii) SHARP devices shall not be used for or in connection with equipment that requires an extremely high level of reliability and safety such as:
- --- Space applications
- --- Telecommunication equipment [trunk lines]
- --- Nuclear power control equipment
- --- Medical and other life support equipment (e.g., scuba).
· If the SHARP devices listed in this publication fall within the scope of strategic products described in the Foreign Exchange and Foreign Trade Law of Japan, it is necessary to obtain approval to export such SHARP devices.
· This publication is the proprietary product of SHARP and is copyrighted, with all rights reserved. Under the copyright laws, no part of this publication may be reproduced or transmitted in any form or by any means, electronic or mechanical, for any purpose, in whole or in part, without the express written permission of SHARP. Express written permission is also required before any use of this publication may be made by a third party.
- --- Audio visual equipment
- --- Consumer electronics
(ii) Measures such as fail-safe function and redundant design should be taken to ensure reliability and safety when SHARP devices are used for or in connection
· Contact and consult with a SHARP representative if there are any questions about the contents of this publication.
Sheet No.: D4-A02201EN
13
Updated at June 10, 2026
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