PC901V SHARP | Alldatasheet

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*3 For 10 seconds n Features 1. Normal-ON operation, open collector out- put 3. TTL and LSTTL compatible output 4. High isolation voltage between input and output (V iso 1. Isolation between logic circuits 2. Logic level shifters 3. Line receivers 4. Replacements for relays and pulse trans- formers 5. Noise reduction (Ta= 25˚C )n Absolute Maximum Ratings Internal connection diagram PC901Vmark θ Anode θ ( Unit : mm) Parameter Symbol Rating Unit Input Forward current I F 50 mA *1Peak forward current I FM 1A Reverse voltage V R 6V Power dissipation P 70 mW Output Supply voltage V CC 16 V High level output voltage V OH 16 V Low level output current I OL 50 mA Power dissipation P O 150 mW Total power dissipation P tot 170 mW Isolation voltage V iso*2 Operating temperature T opr - 25 to + 85 ˚C Storage temperature T stg - 40 to + 125 ˚C *3Soldering temperature T sol 260 ˚C data books, etc. Contact SHARP in order to obtain the latest version of the device specification sheets before using any SHARP's device.” “ In the absence of confirmation by device specification sheets, SHARP takes no responsibility for any defects that occur in equipment using any of SHARP's devices, shown in catalogs, *1 Pulse width <= 100µs, Duty ratio : 0.001 Amp Voltage regulator 123 456 123 456

1 Anode

2 Cathode

3 N C

5 GND

  1. High sensitivity (IFLH : MAX. 2.0mA at Ta= 25˚C) n Applications CC2. Operating supply voltage (V : 3 to 15V) n Outline Dimensions 6. Recognized by UL, file No. 64380 5 000 *2 40 to 60% RH, AC for 1 minute An OPIC consists of a light-detecting element and signal- processing circuit integrated onto a single chip. * “ OPIC ” ( Optical IC) is a trademark of the SHARP Corporation. : 5 000Vrms ) V rms θ = 0 to 13˚

4 V O

6 V CC

6.5± 0.5 0.9± 0.2 1.2± 0.3 0.26± 0.1 3.5± 0.53.7± 0.5 0.5± 0.1 0.5TYP.

*5 IFHL represents forward current when output goes from high to low. *6 Hysterisis stands for IFHL /IFLH *7 Test circuit for response time is shown below. *8 Test circuit for CMH ,CM L shown below. Voltage regulator Switch for Infrared LED B A Amp. 280Ω 0.1µ F 0.1µF 280Ω Amp. Voltage regulator 47Ω 1.5V 600V GND GND tr= tf= 0.01µ s ZO = 50Ω VIN VO VIN VO tPLH tPHL VOH VOLtftr 50% 90% 10% VCM Switch for Infrared LED at A (IF = 0) IF + - VCM VO VO (MAX. )= 0.8V Switch for Infrared LED at B (IF = 4mA ) VO (MIN.)= 2.0V VOL Test Circuit for Response Time Parameter Symbol Conditions MIN. TYP. MAX. Unit Input Forward voltage V F Reverse current I R Ta = 25˚C, VR -- 1 0 µ A Terminal capacitance C t Ta = 25˚C, V = 0, f = 1kHz - 30 250 pF Output Operating supply voltage V CC 3 - 15 V Low level output voltage V OL IOL = 16mA, V CC = 5V, IF - 0.2 0.4 V High level output current I OH V O =V CC = 15V, IF - - 100 µ A Low level supply current I CCL V CC = 5V, IF = 0 - 2.5 5.0 mA High level supply current I CCH V CC = 5V, IF = 4mA - 2.7 5.5 mA Transfer charac- teristics IFLH Ta = 25˚C, VCC = 5V, RL = 280Ω - 1.1 2.0 mAV CC = 5V, RL = 280Ω - - 4.0 IFHL Ta = 25˚C, VCC = 5V, RL = 280Ω 0.4 0.8 - mAV CC = 5V, RL = 280Ω 0.3 - - *6 Hysteresis IFHL /IFLH V CC = 5V, RL = 280Ω 0.5 0.7 0.9 - Isolation resistance R ISO 5x1 010 1011 - Ω tPLH Ta = 25˚C V CC = 5V, IF = 4mA R L = 280Ω -13 µ stPHL -26 time tr - 0.1 0.5 Fall time *7Response tf - 0.05 0.5 tion voltage (High level output) *8Instantaneous common mode rejec- CM H V CM = 600V (peak ), VO (MIN. )=2 V IF = 4mA, R L = 280Ω , Ta = 25˚C - - 2000 - V/ µ s tion voltage (Low level output) *8Instantaneous common mode rejec- CM L V CM = 600V (peak ), VO (MAX. )= 0.8V IF = 0, RL = 280Ω , Ta = 25˚C - 2000 - V/ µ s *4 IFLH represents forward current when output goes from low to high. *4 “L → H ” threshold input *5 “H → L ” threshold input n Electro-optical Characteristics “L → H ” propagation delay time “H → L ” propagation delay time Rise time =4 V = 4mA current current Test Circuit for CMH , CML Ta = 25˚C, DC500V, 40 to 60% RH (Ta= 0 to + 70˚C unless otherwise specified)

  • 25 0 25 50 75 100 85 Ambient temperature T a (˚C) 50˚C 25˚C 0˚C 100 200 500 Forward voltage VF (V ) - 25˚C T a= 75˚C 0.2 Relative threshold input current 0.4 0.6 1.4 51 0 2 001 5 1.2 1.0 0.8 I FLH IFHL Supply voltage VCC (V ) Fig. 4 Relative Threshold Input Current vs. Supply Voltage 0.4 Relative threshold input current 0.6 0.8 1.6 0 25 50 100-2 5 7 5 1.4 1.2 1.0 0.2 V CC =5 V IFLH IFHL Ambient temperature Ta (˚C) Fig. 5 Relative Threshold Input Current vs. Ambient Temperature IFLH = 1 at Ta = 25˚C 0.01 0.02 0.05 0.1 1.0 2 5 10 100 5020 0.2 0.5 Low level output voltage VOL (V ) Low level output current IOL (mA ) Fig. 6 Low Level Output Voltage vs. Low Level Output Current Power dissipation PO , Ptot (mW ) Fig. 1 Forward Current vs. Ambient Temperature Fig. 2 Power Dissipation vs. Ambient Temperature Forward current IF (mA ) Ambient temperature Ta (˚C) P tot P O -2 5 Fig. 3 Forward Current vs. Forward Voltage Forward current IF (mA ) T a = 25˚C IFLH = 1 at VCC =5 V V CC =5 V IF =0 T a = 25˚C

0.2 0.3 0.5 - 25 0 25 50 100 0.1 0.4 16mA 5mA Ambient temperature Ta (˚C) Fig. 7 Low Level Output Voltage vs. Ambient TemperatureLow level output voltage VOL (V ) 0.1 0.2 0.5 10 60 20 30 40 50 Fig. 8 High Level Output Current vs. Forward current IF (mA ) High level output current IOH (µ A ) Forward Current 0.05 0.5 - 25 0 25 50 75 100 0.2 0.1 Fig. 9 High Level Output Current vs. V CC =V O = 15V IF = 4mA Ambient Temperature 48 1 801 2 10 1462 25˚C 85˚C ICCH ICCL ICCH ICCL ICCH ICCL Supply voltage VCC (V ) T a= - 25˚C Fig.10 Supply Current vs. Supply Voltage 10 20 30 40 6005 0 t PHL tPLH Fig.11 Propagation Delay Time vs. Forward Current 0.1 0.2 0.5 1 2 5 10 20 0.2 0.3 0.4 0.5 0.6 Rise time, fall time tr , tf (µ s) Fig.12 Rise Time, Fall Time vs. V CC =5 V IOL = 30mA V CC =5 V T a = 25˚C High level output current IOH (µ A ) Ambient temperature Ta (˚C) V CC =5 V R L = 280Ω T a = 25˚C tr tf V CC =5 V IF = 4mA T a = 25˚C Forward current IF (mA ) Propagation delay time tPHL , tPLH (µ s) Supply current ICC (mA ) Load Resistance Load resistance RL (k Ω )

(2) Handle this product the same as with other integrated circuits against static electricity. GND near the device in order to stabilize power supply line. (3) As for other general cautions, please refer to the chapter “ Precautions for Use ” (1) It is recommended that a by-pass capacitor of more than 0.01µ F is added between V