STS100 SOLIDSTATE | Alldatasheet

Document overview

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Technical content

The STS100 combines two 1 Form A solid state relays and one optocoupler in a 16-pin SOIC package. Each relay is composed of an Infrared LED optically coupled to a Photo Diode Array that drives two back-to-back DMOS transistors. The optocoupler consists of back- to-back Infrared LEDs optically coupled to a Photo-Transistor. The small outline and low height make the STS100 an ideal choice in telecom circuits where function integration and reduction of board space are essential.

DESCRIPTION

OPTIONS/SUFFIXES* SCHEMATIC DIAGRAM ABSOLUTE MAXIMUM RATINGS* APPROVALS Miniature 16pin SOIC package• Function integration (2 relays+1 optocoupler in one package)• High Blocking Voltage (400V, relay portion)• Low input control current (2.5mA TYP, relay portion)• Low On-Resistance (30 ohms MAX, relay portion)• High Load Current (120mA MAX, relay portion)• High Input - Output Isolation (1.5kV MIN, relay portion)• Long life / high reliability• RoHS / Pb-Free / REACH Compliant• Telecom switching• PCMCIA cards• Fax/modem modules• Set-top boxes• DAA arrangements• Hookswitch• Loop current detect• Pulse dialing• Tape and Reel (1,000pcs / reel)• -TR NOTE: Suffixes listed above are not included in marking on device for part number identification. PARAMETER UNIT MIN TYP MAX Storage Temperature °C -55 120 Operating Temperature °C -40 85 Continuous Input Current mA 40 Transient Input Current mA 400 Reverse Input Control Voltage V 6 Output Power Dissipation mW 500 *The values indicated are absolute stress ratings. Functional operation of the device is not implied at these or any conditions in excess of those defined in electrical characteristics section of this document. Exposure to Absolute Ratings may cause permanent damage to the device and may adversely affect reliability. UL / C-UL Approved (File# E201932)• Page 1 of 7 STS100 © 2011 Solid State Optronics • San José, CA Not Used (+/-) Input LED (-/+) Input LED (+) Input LED Not Used (-) Input LED (+) Input LED (-) Input LED Emitter Collector Relay Output (Form A) Not Used Relay Output (Form A) Relay Output (Form A) Not Used Relay Output (Form A)

ELECTRICAL CHARACTERISTICS - 25°C PARAMETER UNIT MIN TYP MAX TEST CONDITIONS RELAY PORTION INPUT SPECIFICATIONS LED Forward Voltage V 1.2 1.5 If = 10mA LED Reverse Voltage V 61 2 Ir = 10uA Turn-On Current m 2.5 5 Io = 120mAA Turn-Off Current m 0.5A RELAY PORTION OUTPUT SPECIFICATIONS Blocking Voltage V 400 Io = 1uA Continuous Load Current m 120 If = 5mAA On-Resistance Ω 18 30 If = 5mA, Io = 120mA Leakage Current µ 0.21 1 Vo = 400VA Output Capacitance p 25 50 Vo = 25V, f = 1.0MHzF Offset Voltage m 0.2 If = 5mAV RELAY PORTION COUPLED SPECIFICATIONS Turn-On Time m 2 5 If = 5mA, Io = 120mAs Turn-Off Time m 0.5 1 If = 0mA, Io = 120mAs OPTOCOUPLER PORTION INPUT SPECIFICATIONS LED Forward Voltage V 1.2 1.5 If = 10mA Turn-On Current m 2 Io = 0.5mAA Reverse Current µ 10 Vr = 4VA Terminal Capacitance p 30 250 V = 0, f = 1kHzF OPTOCOUPLER PORTION OUTPUT SPECIFICATIONS Collector-Emitter Breakdown Voltage V 60 Io = 10uA, If = 0 Emitter-Collector Breakdown Voltage V 5 If = 100uA, If = 0 Collector Dark Current µ 0.1 Vce = 20V, If = 0A Floating Capacitance p 0.6 1 V = 0V, f = 1.0MHzF Vce Saturation Voltage V 0.1 0.3 If = 20mA, Ic = 1mA Current Transfer Ratio % 30 100 800 If = 5mA, Vce = 5V Rise Time µ 5 20 Ic = 2mA, Vce = 2V, RL = 100 ohmss Fall Time µ 4 20 Ic = 2mA, Vce = 2V, RL = 100 ohmss COUPLED SPECIFICATIONS Isolation Voltage V 1500 t = 1 minute Isolation Resistance G 50 DC500VΩ Coupled Capacitance p 2F Page 2 of 7 STS100 © 2011 Solid State Optronics • San José, CA Contact Transient Ratio V / µs 2000 7000 DV = 50V

Turn-On Time (ms) Device Cou STS100 Turn-Off Time (ms) Device Cou Typical Turn-On Time Distribution N = 100, Ambient Temperature = 25°C STS100 Typical Turn-Off Time Distribution N = 100, Ambient Temperature = 25°C 15 16 17 18 19 20 21 22 On-Resistance (ohms) Device Cou STS100 Leakage Current (uA) Device Cou Typical On-Resistance Distribution N = 100, Ambient Temperature = 25°C STS100 Typical Leakage Current Distribution N = 100, Ambient Temperature = 25°C 400 410 420 430 440 450 460 470 Blocking Voltage (V) Device Cou STS100 100 150 -40 -20 0 20 40 60 80 Temperature (C) Load Current (m Typical Blocking Voltage Distribution N = 100, Ambient Temperature = 25°C STS100 Maximum Load Current vs. Temperature Page 3 of 7 STS100 © 2011 Solid State Optronics • San José, CA (RELAY PORTION) (RELAY PORTION) (RELAY PORTION)(RELAY PORTION) (RELAY PORTION) (RELAY PORTION)

© 2011 Solid State Optronics • San José, CA STS100 - OPTOCOUPLER PORTION Forward Current vs. Ambient Temperature N = 100, Ambient Temperature = 25°C STS100 - OPTOCOUPLER PORTION Diode Power Dissipation vs. Ambient Temperture N = 100, Ambient Temperature = 25°C STS100 - OPTOCOUPLER PORTION Collector Power Dissipation vs. Ambient Temperature N = 100 STS100 - OPTOCOUPLER PORTION Total Power Dissipation vs. Ambient Temperature N = 100 STS100 - OPTOCOUPLER PORTION Peak Forward Current vs. Duty Ratio N = 100, Ambient Temperature = 25°C STS100 - OPTOCOUPLER PORTION Forward Current vs. Forward Voltage N = 100, Ambient Temperature = 25°C Ambient temperature Ta (°C) Forward current IF (mA) Ambient temperature Ta (°C) Diode power dissipation P (mW) Ambient temperature Ta (°C) Collector power dissipation PC (mW) Ambient temperature Ta (°C) Total power dissipation PC (mW) Forward voltage VF (V) Forward current IF (mA) Duty ratio Peak forward current IFM (mA)

© 2011 Solid State Optronics • San José, CA STS100 - OPTOCOUPLER PORTION Current Transfer Ratio vs. Forward Current N = 100, Ambient Temperature = 25°C STS100 -OPTOCOUPLER PORTION Collector Current vs. Collector-Emitter Voltage N = 100, Ambient Temperature = 25°C STS100 - OPTOCOUPLER PORTION Relative Current Transfer Ratio vs. Ambient Temperature N = 100 STS100 - OPTOCOUPLER PORTION Collector-Emitter Saturation Voltage vs. Ambient Temperature N = 100 STS100 - OPTOCOUPLER PORTION Response Time vs. Load Resistance N = 100, Ambient Temperature = 25°C STS100 - OPTOCOUPLER PORTION Collector Dark Current vs. Ambient Temperature N = 100 Forward current IF (mA) Current transfer ratio CTR (%) Collector-emitter voltage VCE (V) Collector current Ic (mA) Ambient Temperature Ta (°C) Relative current transfer ratio (%) Ambient Temperature Ta (°C) Collector-emitter saturation voltage VCE (SAT) (V) Ambient Temperature Ta (°C) Collector dark current ICEO (A) Load resistance RL (K ohm) Response Time (us)

16 PIN SMALL OUTLINE INTEGRATED CIRCUIT

© 2011 Solid State Optronics • San José, CA MECHANICAL DIMENSIONS NOTE: MAX Co-planarity 0.003" (0.076mm)

Solid State Optronics (SSO) makes no warranties or representations with regards to the completeness and accuracy of this docume nt. SSO reserves the right to make changes to product description, specifications at any time without further notice. SSO shall not assume any liability arising out of the appl ication or use of any product or circuit described herein. Neither ci rcuit patent licenses nor indemnity are expressed or implied. Except as specified in SSO's Standard Terms & Conditions, SSO disclaims liability for consequential or other damage, and we mak e no other warranty, expressed or implied, including merchantability and fitness for particular use. DISCLAIMER LIFE SUPPORT POLICY SSO does not authorize use of its devices in life support applications wherein failure or malfunction of a device may lead to personal injury or death. Users of SSO devices in life support applications assume all risks of such use and agree to indemnify SSO against any an d all damages resulting from such use. Life support devices are defined as devices or systems which, (a) are intended for surgical im plant into the body, or (b) support or sustain life, and (c ) whose failure to perform when used properly in accordance with instructions for use can be reasonably expected to result in significant injury to the user, or (d) a critical component in any component of a life support device or system whose failure can be reasonably expected to caus e failure of the life support device or system, or to affect its safety or effe ctiveness. Page 7 of 7 STS100 © 2011 Solid State Optronics • San José, CA