Details, datasheet, quote on part number: SFH690ABT
PartSFH690ABT
Category
DescriptionOptocoupler, Phototransistor Output, SOP-4, Mini-flat Package
CompanyVishay Intertechnology
DatasheetDownload SFH690ABT datasheet
Cross ref.Similar parts: TLP185(SE, PC357N5
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Features, Applications

FFEATURES Current Transfer Ratios SFH690ABT, 50%300% SOP (Small Outline Package) Isolation Test Voltage, 3750 VRMS (1.0 s) High Collector-Emitter Breakdown Voltage, VCEO=70 V Low Saturation Voltage Fast Switching Times Field-Effect Stable by TRIOS (TRansparent IOn Shield) Temperature Stable Low Coupling Capacitance End-Stackable,.100" (2.54 mm) Spacing Underwriters Lab File #52744 APPLICATIONS High density mounting or space sensitive PCBs PLCs Telecommunication DESCRIPTION

Absolute Maximum Ratings, TA=25C (except where noted)

Emitter The SFH690xT family has a GaAs infrared emitting diode Reverse Voltage............................................................................... 6.0 V emitter, which is optically coupled to a silicon planar pho- DC Forward Current.......................................................................50 mA totransistor detector, and is incorporated a 4 pin 100 Surge Forward Current s)....................................................2.5 A mil lead pitch miniflat package. It features a high current Total Power Dissipation............................................................... 80 mW transfer ratio, low coupling capacitance, and high isolaDetector tion voltage. Collector-Emitter Voltage.................................................................. 70 V Emitter-Collector Voltage................................................................. 7.0 V The coupling devices are designed for signal transmisCollector Current............................................................................50 mA sion between two electrically separated circuits. Collector Current ms).......................................................100 mA The SFH690xT will be offered in tape and reel format Total Power Dissipation............................................................. 150 mW only. There are 2000 parts per reel. For the SFH690AT, Package the product will be marked as SFH690A and the Isolation Test Voltage between Emitter and SFH690BT will be marked as SFH690B. The Detector (1.0 s)....................................................................3750 VRMS SFH690ABT will be marked or SFH690B. Creepage.......................................................................................... 5.33 mm Clearance.......................................................................................... 5.08 mm Insulation Thickness between Emitter and Detector.................. 0.4 mm Comparative Tracking Index per DIN IEC 112/VDE0 303, part 1.................................................... 175 Isolation Resistance TA=100C..................................................................... 1011 Storage Temperature Range............................................. to +150C Ambient Temperature Range............................................ to +100C Junction Temperature.................................................................... 100C Soldering Temperature (max. 10 s Dip Soldering Distance to Seating Plane 1.5 mm).......................................... 260C

Table 1. Electrical Characteristics, TA=25C (except where noted) Description Emitter (IR GaAs)
Forward Voltage Reverse Current Capacitance Thermal Resistance
Leakage Current, Collector-emitter Capacitance Thermal Resistance
Table 2. Current Transfer Ratio (IC/IF VCE=5.0 V) Description IC/IF (IF=5.0 mA) A

Figure 1. Switching Operation (without saturation) Table 3. Switching Times IC=2.0 mA, V, TA=25C Parameter

Load Resistance Rise Time Fall Time
Figure 2. Diode Forward Voltage vs. Forward Current
Figure 5. Collector Current vs. Collector-Emitter Saturation Voltage
C Forward Voltage, VF(V) C Collector Current (mA) C
Figure 3. Collector Current vs. Collector Emitter Voltage
Figure 6. Normalized Output Current vs. Ambient Temperature
Figure 4. Collector to Emitter Dark Current vs. Ambient Temperature
Figure 7. Normalized Output Current vs. Ambient Temperature

 

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