# MOSFET Relay, 600 V, 200 mA, 16 ohm, SPST-NO

![Product image](https://novapart.co/image/farnell:1708461/)

**URL**: https://novapart.co/products/ASSR-5211-301E/mosfet-relay-600-v-200-ma-16-ohm-spst-no
**SKU**: ASSR-5211-301E
**Manufacturer**: BROADCOM
**Category**: Switches & Relays || Relays || Solid State Relays & Contactors || MOSFET Solid State Relays
**Price**: €2.9900
**Stock**: 10+
**Lead Time**: 120 days (indicative)

## Description

Contact Configuration:SPST-NO; Load Current:200mA; Relay Terminals:SMD; Load Voltage Max:600V; On State Resistance Max:16ohm; Isolation Voltage:3.75kV; Forward Current If:20mA; Product Range:-

## Specifications

| Parameter | Value |
|---|---|
| Load Type | AC / DC |
| Contact Form | SPST-NO (1 Form A) |
| Load Current | 200mA |
| Product Range | ASSR-5211 Series |
| Relay Mounting | Surface Mount |
| Relay Terminals | Gull Wing |
| Load Voltage Max | 600V |
| Isolation Voltage | 3.75kV |
| Forward Current If | 20mA |
| I/O Capacitance Typ | 0.8pF |
| Contact Configuration | SPST-NO |
| On State Resistance Max | 16ohm |
| Mosfet Relay Package Style | DIP-6 |
| Off State Leakage Current Max | - |

## Datasheet

📄 [Download PDF](https://novapart.co/datasheet/farnell:1708461/)

**ASSR-5211** High Current, 1 Form A, Solid State Relay (MOSFET) (600V/0.2A/16 W ) 

## **Data Sheet** 

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Lead (Pb) Free<br>RoHS 6 fully<br>compliant<br>RoHS 6 fully compliant options available;<br>-xxxE denotes a lead-free product<br>**----- End of picture text -----**<br>


## **Description** 

The ASSR-5211 is specifically designed for high current applications, commonly found in the industrial equipments. The relay is a solid-state replacement for singlepole, normally-open, (1 Form A) electromechanical relays. 

The ASSR-5211 consists of an AlGaAs infrared lightemitting diode (LED) input stage optically coupled to a high-voltage output detector circuit. The detector consists of a high-speed photovoltaic diode array and driver circuitry to switch on/off two discrete high voltage MOSFETs. The relay turns on (contact closes) with a minimum input current of 3mA through the input LED. The relay turns off (contact opens) with an input voltage of 0.8V or less. 

The ASSR-5211 connection A, as shown in the schematic, allows the relay to switch either ac or dc loads. The connection B, with its advantages of reduced on-resistance and higher output current, allows the relays to switch dc loads only. 

The electrical and switching characteristics are specified over the temperature range of -40°C to +85°C. 

## **Functional Diagram** 

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Opto-isolation<br>**----- End of picture text -----**<br>


## **Features** 

- Compact Solid-State Bi-directional Signal Switch 

- Single Channel Normally-off Single-Pole-Single-Throw (SPST) Relay 

- 600V Output Withstand Voltage 

- 0.2A or 0.4A Current Rating 

- Low Input Current: CMOS Compatibility 

- Low On-Resistance: 

   - 2.5 W Typical for DC-only, 10 W Typical for AC/DC 

- High Speed Switching: 0.7ms (Ton), 0.07ms (Toff) Typical @ IF = 5mA 

- High Transient Immunity: >1kV/μs 

- High Input-to-Output Insulation Voltage (Safety and Regulatory Approvals Pending) 

      - 3750 VRMS for 1 min per UL1577 

      - CSA Component Acceptance 

      - *5000 VRMS/1 Minute rating is for Option X21 only 

## **Applications** 

- Industrial Controls 

- Factory Automation 

- Data Acquisition 

- Measuring Instrument 

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1 6<br>Truth Table<br>2 5 LED Output<br>Off Open<br>On Close<br>3 4<br>+a<br>Circuit Turn-off<br>**----- End of picture text -----**<br>


- Medical System 

- Security System 

- EMR / Reed Relay Replacement 

_CAUTION: It is advised that normal static precautions be taken in handling and assembly of this component to prevent damage and/or degradation which may be induced by ESD._ ~~O~~ O 

1 

## **Ordering Table** 

ASSR-5211 is UL Recognized with 3750 VRMS and 5000 VRMS (option x21) for 1 minute per UL1577 and is approved under CSA Components Acceptance Notice #5, File CA 88324 

|**Part**<br>**Number**|**Option**<br>**Package**<br>**RoHS**<br>**Compliant**|**Surface**<br>**Mount**<br>**Gullwing**<br>**Tape**<br>**& Reel**<br>**UL 5000 VRMS/**<br>**1 Minute**<br>**Rating**<br>**Quantity**|
|---|---|---|
|ASSR-5211|-001E<br>300mil<br>DIP-6<br>-021E<br>-301E<br>-321E<br>-501E<br>-521E|50 units per tube<br>X<br>X<br>X<br>X<br>X<br>X|
|||X<br>X<br>X<br>1000 units per reel<br>X<br>X<br>X<br>X|



To order, choose a part number from the part number column and combine with the desired option from the option column to form an order entry. 

## Example 1: 

ASSR-5211-501E to order product of 300mil DIP-6 Gull Wing Surface Mount package in Tape and Reel packaging and RoHS Compliant. 

## Example 2: 

ASSR-5211-021E to order product of 300mil DIP-6 package in tube packaging, RoHS Compliant and UL 5000VRMS 1 Minute rating. 

## **Schematic** 

## **Connection A – AC/DC** 

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Opto-isolation<br>Opto-isolation<br>1 6<br>1 6<br>Equivalent<br>2 5 Relay<br>Vo<br>Diagram<br>2 4<br>3 4<br>Circuit Turn-off<br>**----- End of picture text -----**<br>


## **Connection B – DC Only** 

**Opto-isolation** 

**Opto-isolation** 

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Opto-isolation<br>1 6<br>+<br>1 4 and 6<br>Vo Equivalent<br>2 5 Relay<br>- Diagram<br>2 5<br>3<br>4<br>Circuit Turn-off<br>**----- End of picture text -----**<br>


2 

## **Package Outline Drawings** 

## **ASSR-5211  6-Pin DIP Package** 

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9.40 (0.370) 7.36 (0.290)<br>9.90 (0.390) 7.88 (0.310)<br>6 5 4 TYPE<br>NUMBER<br>LEAD FREE 0.20 (0.008)<br>DATE CODE 0.33 (0.013)<br>A XXXX<br>UL<br>YYWW U RECOGNITION 5 °  TYP.<br>PIN<br>ONE 1 2 3<br>DOT<br>6.10 (0.240)<br>1.78 (0.070) MAX. 6.60 (0.260)<br>4.70 (0.185) MAX.<br>(0.020)<br>(0.040)<br>2.66 (0.105) MIN.<br>0.45 (0.018)<br>2.16 (0.085) 0.65 (0.025)<br>2.54 (0.100)<br>2.28 (0.090)<br>2.80 (0.110)<br>DIMENSIONS IN MILLIMETERS AND (INCHES).<br>R<br>**----- End of picture text -----**<br>


## **ASSR-5211  6-Pin DIP Package with Gull Wing Surface Mount Option 300** 

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9.65 ± 0.25 LAND PATTERN RECOMMENDATION<br>(0.380 ± 0.010)<br>6.35 ± 0.25<br>(0.250 ± 0.010) 10.9 (0.430)<br>1.27 (0.050) 2.0 (0.080)<br>9.65 ± 0.25<br>(0.380 ± 0.010)<br>1.78<br>(0.070) 7.62 ± 0.25<br>MAX. 0.635 ± 0.130 (0.300 ± 0.010) 0.20 (0.008)<br>(0.025 ± 0.005) 0.30 (0.013)<br>4.19<br>MAX.<br>(0.165)<br>0.635 ± 0.25<br>2.54<br>(0.025 ± 0.010)<br>2.29 (0.100)<br>(0.090) TYP. 12 °  NOM.<br>**----- End of picture text -----**<br>


**NOTE: FLOATING LEAD PROTRUSION IS 0.25 mm (10 mils) MAX.** 

3 

## **Solder Reflow Temperature Profile** 

Recommended reflow condition as per JEDEC Standard, J-STD-020 (latest revision). Non-Halide Flux should be used. 

## **Regulatory Information** 

The ASSR-5211 is approved by the following organizations: 

## **UL** 

Approved under UL 1577, component recognition program up to VISO = 3750 VRMS and  5000 VRMS (option x21). Approved under CSA Component Acceptance Notice #5. 

## **Insulation and Safety Related Specifications** 

|**Parameter**|**Symbol**|**ASSR-5211**|**Units**|**Conditions**|
|---|---|---|---|---|
|Minimum External Air Gap|L(101)|7.1|mm|Measured from input terminals to output terminals,|
|(Clearance)||||shortest distance through air.|
|Minimum External Tracking|L(102)|7.4|mm|Measured from input terminals to output terminals,|
|(Creepage)||||shortest distancepath alongbody.|
|Minimum Internal Plastic Gap||0.08|mm|Through insulation distance conductor to conductor,|
|(Internal Clearance)||||usually the straight line distance thickness between the|
|||||emitter and detector.|
|Tracking Resistance|CTI|175|V|DIN IEC 112/VDE 0303 Part 1|
|(Comparative TrackingIndex)|||||
|Isolation Group(DIN VDE0109)||IIIa||Material Group(DIN VDE 0109)|



4 

## **Absolute Maximum Ratings** 

|**Parameter**|**Symbol**|**Min.**<br>**Max.**<br>**Units**<br>**Note**|
|---|---|---|
|Storage Temperature|TS|-55<br>125<br>°C|
|OperatingTemperature|TA|-40<br>85<br>°C|
|Junction Temperature|TJ|125<br>°C|
|Lead Soldering Cycle|Temperature|260<br>°C|
||Time|10<br>sec|
|Input Current|Average<br>IF<br>Surge<br>Transient|25<br>mA|
|||50<br>mA|
|||1000<br>mA|
|Reversed Input Voltage|VR|5<br>V|
|Input Power Dissipation|PIN|40<br>mW|
|Output Power<br>Dissipation|Connection A<br>PO<br>Connection B|640<br>mW|
|||640<br>mW|
|Average Output Current<br>(TA=25°C, TC≤ 100°C)|Connection A<br>IO<br>Connection B|0.2<br>A|
|||0.4<br>A|
|Output Voltage<br>(TA=25°C)|Connection A<br>VO<br>Connection B|- 600<br>600<br>V<br>1|
|||0<br>600<br>V|
|ESD Human Body Model:<br>MIL-STD-883 Method 3015.7||4<br>kV|
|Solder Refow Temperature Profle<br>See Lead Free IR Profle|||



## **Recommended Operating Conditions** 

|**Parameter**|**Symbol**|**Min.**|**Max.**|**Units**|**Note**|
|---|---|---|---|---|---|
|Input Current (ON)|IF(ON)|3|20|mA||
|Input Voltage (OFF)|VF(OFF)|0|0.8|V||
|Operating Temperature|TA|-40|+85|°C||



## **Package Characteristics** 

Unless otherwise specified, operating temperature TA = 25°C. 

|**Parameter**<br>**Symbol**|**Min.**<br>**Typ.**<br>**Max.**<br>**Units**<br>**Conditions**<br>**Note**|
|---|---|
|Input-Output Momentary<br>Withstand Voltage<br>VISO|3750<br>VRMS<br>RH ≤ 50%, t = 1min,<br>TA= 25°C<br>3, 4|
||5000<br>RH ≤ 50%, t = 1min,<br>TA= 25°C, option x21|
|Input-Output Resistance<br>RI-O|1014<br>W<br>VI-O= 500 Vdc<br>3|
|Input-Output Capacitance<br>CI-O|0.8<br>pF<br>VI-O= 0Vdc, f = 1MHz<br>3|



5 

## **Electrical Specifications (DC)** 

Over recommended operating TA = - 40°C to 85°C, IF = 5mA to 10mA, unless otherwise specified. 

|**Parameter**|**Parameter**|**Sym.**|**Min.**<br>**Typ.**<br>**Max.**<br>**Units**<br>**Conditions**<br>**Fig.**<br>**Note**|
|---|---|---|---|
|Output Withstand Voltage||| VO(OFF)||600<br>650<br>V<br>VF=0.8V, IO=250mA, TA=25°C|
||||550<br>V<br>VF=0.8V, IO=250mA|
|Output<br>On-Resistance|Connection A|R(ON)|10<br>16<br>W<br>IF=5mA, IO=0.2A,<br>Pulse ≤30ms, TA=25°C<br>3<br>10<br>-<br>6|
||Connection B|R(ON)|2.5<br>4<br>W<br>IF=5mA, IO=0.4A,<br>Pulse ≤30ms, TA=25°C<br>11<br>6|
|Output Leakage Current||IO(OFF)|0.001<br>0.1<br>mA<br>VF=0.8V, VO=600V, TA=25°C<br>5<br>-|
||||1<br>mA<br>VF=0.8V, VO=550V<br>4<br>-|
|Output Of-Capacitance||C(OFF)|500<br>pF<br>VF=0.8V, VO=0V, f=1MHz<br>6<br>-|
|Output Ofset Voltage|||V(OS)||1<br>mV<br>IF=5mA, IO=0mA|
|Input Reverse Breakdown Voltage||VR|5<br>V<br>IR=10mA|
|Input Forward Voltage||VF|1.1<br>1.3<br>1.7<br>V<br>IF=5mA<br>7,8<br>-|



## **Switching Specifications (AC)** 

Over recommended operating TA = - 40°C to 85°C, IF = 5mA to 10mA, unless otherwise specified. 

|**Parameter**<br>**Sym.**|**Min.**<br>**Typ.**<br>**Max.**<br>**Units**<br>**Conditions**<br>**Fig.**<br>0.7<br>2.5<br>ms<br>IF=5mA, IO=0.2A, TA=25°C<br>12,16|**Note**|
|---|---|---|
|Turn On Time<br>TON|||
||5.0<br>ms<br>IF=5mA, IO=0.2A<br>13,16||
||0.4<br>1.5<br>ms<br>IF=10mA, IO=0.2A, TA=25°C<br>12,16||
||3.0<br>ms<br>IF=10mA, IO=0.2A<br>13,16||
|Turn Of Time<br>TOFF|0.07<br>0.5<br>ms<br>IF=5mA, IO=0.2A, TA=25°C<br>14,16||
||1<br>ms<br>IF=5mA, IO=0.2A<br>15,16||
||0.06<br>0.2<br>ms<br>IF=10mA, IO=0.2A, TA=25°C<br>14,16||
||0.5<br>ms<br>IF=10mA, IO=0.2A<br>15,16||
|Output Transient Rejection<br>dVO/dt|1<br>7<br>kV/ms<br>∆VO=600V, RM≥ 1MΩ,<br>CM=1000pF, TA=25°C<br>17|5|
|Input-Output Transient<br>Rejection<br>dVI-O/dt|1<br>20<br>kV/ms<br>VDD=5V, ∆VI-O=1000V,<br>RL=1kΩ, CL=25pF, TA=25°C<br>18|5|



Notes: 

1. For derating, refer to Figure 1 and 2. 

2. The voltage across the output terminal of the relay should not exceed this rated withstand voltage. Over-voltage protection circuits should be added in some applications to protect against over-voltage transients. 

3. Device is considered as a two terminal device: pins 1, 2, and 3 shorted together and pins 5, 6, and 7 shorted together. 

4. The Input-Output Momentary Withstand Voltage is a dielectric voltage rating that should not be interpreted as an input-output continuous voltage rating. For the continuous voltage rating refer to the IEC/EN/DIN EN 60747-5-2 Insulation Characteristics Table (if applicable), your equipment level safety specification, or Avago Application Note 1074, “Optocoupler Input-Output Endurance Voltage.” 

5. During the pulsed R(ON) measurement ( IO duration ≤30ms), ambient (TA) and case temperature (TC) are equal. 

6. For the transient rejection measurements, refer to Avago whitepaper, AV01-0610EN, “Solid State Relay Transient Immunity”. 

6 

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0.25<br>IF = 10mA,<br>4-Layer<br>0.2<br>0.15<br>Safe<br>0.1 Operating<br>Area<br>0.05<br>0<br>-40 -20 0 20 40 60 80 100<br>TA- TEMPERATURE -  ° C<br>-OUTPUT CURRENT - A<br>IO<br>**----- End of picture text -----**<br>


**Figure 1.  Maximum Output Current Rating vs Ambient Temperature (AC/DC Connection)** 

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1.1<br>1.05<br>1<br>0.95<br>0.9<br>-40 -20 0 20 40 60 80 100<br>TA- TEMPERATURE -  ° C<br>VOLTAGE<br>WITHSTAND<br>OUTPUT<br>NORMALIZED<br>**----- End of picture text -----**<br>


**Figure 3.  Normalized Typical Outupt Withstand Voltage vs Temperature** 

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2.5E-04<br>2.0E-04<br>1.5E-04<br>1.0E-04<br>5.0E-05<br>0.0E+00<br>0 150 300 450 600<br>Vo - OUTPUT VOLTAGE - V<br>A<br> µ<br>- OUTPUT LEAKAGE CURRENT -<br>IO(OFF)<br>**----- End of picture text -----**<br>


**Figure 5.  Typical Output Leakage Current vs Output Voltage** 

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0.5<br>IF = 10mA,<br>0.4 4-Layer<br>0.3<br>Safe<br>0.2 Operating<br>Area<br>0.1<br>0<br>-40 -20 0 20 40 60 80 100<br>TA- TEMPERATURE -  ° C<br>-OUTPUT CURRENT - A<br>IO<br>**----- End of picture text -----**<br>


**Figure 2.  Maximum Output Current Rating vs Ambient Temperature (DC Connection)** 

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1.E-07<br>1.E-08<br>1.E-09<br>1.E-10<br>1.E-11<br>1.E-12<br>-40 -15 10 35 60 85<br>TA- TEMPERATURE -  ° C<br>- OUTPUT LEAKAGE CURENT - A<br>IO(OFF)<br>**----- End of picture text -----**<br>


**Figure 4.  Typical Output Leakage Current vs Ambient Temperature** 

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1000<br>800<br>600<br>400<br>200<br>0<br>0 20 40 60 80 100<br>V - OUTPUT VOLTAGE - V<br> O(OFF)<br>- OUTPUT CAPACITANCE - pF<br>OUT<br>C<br>**----- End of picture text -----**<br>


**Figure 6.  Typical Output Off-State Capacitance vs Output Voltage** 

7 

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1.7<br>1.6<br>1.5<br>IF = 10mA<br>1.4<br>1.3 I F  = 5mA<br>1.2<br>1.1<br>1<br>-40 -20 0 20 40 60 80 100<br>TA- TEMPERATURE -  ° C<br> - FORWARD VOLTAGE - VF<br>V<br>**----- End of picture text -----**<br>


**Figure 7.  Typical Forward Voltage vs Ambient Temperature** 

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**----- Start of picture text -----**<br>
0.20<br>0.15 T A = -40  ° C<br>0.10<br>0.05 T A= 25  ° C<br>0.00 T A= 85  ° C<br>-0.05<br>-0.10<br>-0.15<br>-0.20<br>-3 -2 -1 0 1 2 3<br>VO - OUTPUT VOLTAGE - V<br>- OUTPUT CURRENT - A<br>IO<br>**----- End of picture text -----**<br>


**Figure 9.   Typical Output Current vs Output Voltage** 

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10<br>8<br>IF = 5mA<br>6<br>4<br>2<br>IF = 10mA<br>0<br>-50 -25 0 25 50 75 100 125<br>TA-TEMPERATURE -  ° C<br> Ω<br> - ON-RESISTANCE -<br>ON(DC)<br>R<br>**----- End of picture text -----**<br>


**Figure 11.  Typical On Resistance (DC Connection) vs Temperature** 

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**----- Start of picture text -----**<br>
20<br>18 T A =-40  ° C<br>16<br>T A= 0  ° C<br>14<br>12 T A = 25 ° C<br>10<br>8 T A= 85 ° C<br>6<br>4<br>2<br>0.8 1 1.2 1.4 1.6 1.8<br>V F - FORWARD VOLTAGE - V<br> - FORWARD CURRRENT - mAF<br>I<br>**----- End of picture text -----**<br>


**Figure 8.  Typical Forward Current vs Forward Voltage** 

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20<br>15<br>IF = 5mA<br>10<br>IF = 10mA<br>5<br>0<br>-50 -25 0 25 50 75 100 125<br>TA- TEMPERATURE -  ° C<br> Ω<br>- ON-RESISTANCE -<br> ON(AC)<br>R<br>**----- End of picture text -----**<br>


**Figure 10.  Typical On Resistance (AC/DC Connection) vs Temperature** 

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1500<br>1200<br>900<br>600<br>300<br>0<br>5 10 15 20<br>IF - CONTROL CURRENT - mA<br>S<br> µ<br> - TURN ON TIME -<br>ON<br>T<br>**----- End of picture text -----**<br>


**Figure 12.  Typical Turn On Time vs Input Current** 

8 

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1000<br>800<br>I F = 5mA<br>600<br>400<br>IF = 10mA<br>200<br>0<br>-40 -20 0 20 40 60 80 100<br>TA - TEMPERATURE -  ° C<br>Figure 13.  Typical Turn On Time vs Temperature<br>100<br>80<br>IF = 5mA<br>60<br>IF = 10mA<br>40<br>20<br>0<br>-40 -20 0 20 40 60 80 100<br>TA-TEMPERATURE- [o] C<br> µ s<br> -TURN ON TIME -<br>ON<br>T<br> µ -s<br> - TURN OFF TIME -<br>OFF<br>T<br>**----- End of picture text -----**<br>


**Figure 13.  Typical Turn On Time vs Temperature** 

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100<br>80<br>60<br>40<br>20<br>0<br>5 10 15 20<br>IF - CONTROL CURRENT - mA<br>S<br> µ<br> - TURN OFF TIME -<br>OFF<br>T<br>**----- End of picture text -----**<br>


**Figure 14.  Typical Turn Off Time vs Input Current** 

**Figure 15.  Typical Turn Off Time vs Temperature** 

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PULSE GEN. VDD<br>Zo = 50 Ω<br>tf=tr=5ns<br>50% 50%<br>ASSR-5211<br>IF RL OUTPUT<br>1 6 IF<br>P.W. = 10ms<br>C L* OUTPUTVo<br>INPUT MONITORING<br>MONITORINGNODE 2 5 NODE OUTPUT 90%<br>R Vo<br>200ohm 3 4<br>10%<br>(*CLIS APPROXIMATELY<br>25pFWHICH INCLUDES tON tOFF<br>PROBE AND STRAY<br>WIRING CAPACITANCE)<br>**----- End of picture text -----**<br>


**Figure 16  Switching Circuit for TON, TOFF** 

9 

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OUTPUT Vo<br>ASSR-5211<br>MONITORING<br>NODE<br>1 6<br>INPUT OPEN<br>5<br>2<br>VPEAK<br>CM=1nF RM=1Mohm<br>3 4<br>+<br>PULSE GEN<br>Zo = 50<br>CM INCLUDES PROBE AND FIXTURE CAPACITANCE<br>RM INCLUDES PROBE AND FIXTURE RESISTANCE<br>**----- End of picture text -----**<br>


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90% 90%<br>VPEAK<br>10% 10%<br>tR tF<br> VO(MAX)<  0.6V<br>dV0 ( 0 8. )VPEAK ( 0 8. )VPEAK<br>= OR<br>dt tR tF<br>OVER SHOOT ON VPEAK IS TO BE 10%<br>**----- End of picture text -----**<br>


**Figure 17  Test Circuit for Output Transient Immunity** 

10 

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**----- Start of picture text -----**<br>
VDD = 5V<br>IF ASSR-5211<br>RL  = 1kohm<br>OUTPUT Vo<br>B 1 6<br>MONITORING<br>NODE<br>CL*<br>A<br>2 5 (*CLIS APPROXIMATELY 25pFWHICH<br>3 4 INCLUDES PROBE AND STRAY WIRING<br>CAPACITANCE)<br>+<br>VFF<br>VI-O<br>+<br>PULSE GEN.<br>Zo = 50 Ω<br>90% 90%<br>VI-O(PEAK)<br>10% 10%<br>tR tF<br>VO(OFF)<br>SWITCH AT POSITION ‘A’: IF = 0mA VO(OFF) (min)> 4V<br>VO(ON) (min)> 0.8V<br>VO(ON)<br>SWITCH AT POSITION ‘B’: IF = 5mA<br>**----- End of picture text -----**<br>


**Figure 18  Test Circuit for Input-Output Transient Immunity** 

For product information and a complete list of distributors, please go to our web site: **www.avagotech.com** 

Avago, Avago Technologies, and the A logo are trademarks of Avago Technologies in the United States and other countries. Data subject to change.  Copyright © 2005-2008 Avago Technologies. All rights reserved. AV02-0152EN - September 23, 2008 



## Links

- [View this product on Novapart](https://novapart.co/products/ASSR-5211-301E/mosfet-relay-600-v-200-ma-16-ohm-spst-no)
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- [Supplier page](https://es.farnell.com/broadcom/assr-5211-301e/ssr-0-2a-600v-dip6-smd/dp/1708461)
---

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