PC9D10 SHARP | Alldatasheet
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n Absoulte Maximum Ratings (Ta= 25˚C ) n Outline Dimensions ( Unit : mm) 1. Built-in 2-channel (tPHL , tPLH 1. Computer perpherals high speed interface for microcomputer systems 2. High speed line recievers 3. Digital audio equipment 2. Ultra-high speed response 3. Isolation voltage between input and output ISO *1 Ta = 0 to 70˚C *2 Each channel *3 For 1 minute max. *4 AC for 1 minute, 40 to 60% RH. Apply the specified voltage between the whole of the electrode pins on the input side and the whole of the electrode pins on the output side. *5 2mm or more away from the lead base for 10 seconds or less PC9D10 PC9D10 θ Internal connection diagram 12 3 4 5678 1234 5678 1 4 Anode 2 3 Cathode
5 GND
*Output sides are open collector. 4. Low input current drive (IFHL : MAX. 5mA ) 6. Recognized by UL. file No. 64380 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, Parameter Symbol Rating Unit Input *1 *2Forward current I F 15 mA *2Reverse voltage V R 5V Power dissipation P 40 mW Output *3Supply voltage V CC 7V *2 V OH 7V *2 IOL 16 mA P C 60 mW *4 Isolation voltage V iso Operating temperature T opr 0 to + 70 ˚C Storage temperature T stg - 55 to + 125 ˚C *5Soldering temperature T sol 260 ˚C 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. Ultra-high Speed Response, 2-channel OPIC Photocoupler 4. Interface with various data transfer equipment voltage (CMH : TYP. 500V/µ s) : TYP. 50ns at RL = 350Ω ) 5. Instantaneous common mode rejection High level output voltage Low level output current Collector power dissipation *1 *2 Primary side mark (Sunken place) (V 2 500 : 2 500Vrms ) V rms
6 V 02
7 V 01
8 V CC
θ : 0 to 13˚ 6.5± 0.5 0.85± 0.31.2± 0.3 9.22± 0.5 3.5± 0.50.5TYP. 3.0± 0.50.5± 0.1 7.62± 0.3 0.26± 0.1
n Electro-optical Characteristics n Recommended Operating Conditions Connect a ceramic by-pass capacitor (0.01 to 0.1µ F ) between V CC and GND at the position within 1cm from pin. Parameter Symbol MIN. MAX. Unit Low level input current I FL 0 250 µ A High level input current I FH 71 5 m A Supply voltage V CC 4.5 5.5 V Fanout (TTL load) N-8- Operating temperature T opr 07 0 ˚ C Parameter Symbol Conditions MIN. TYP. MAX. Unit Input Forward voltage V F - 1.6 1.75 V Reverse current I R Ta = 25˚C, VR =5 V - - 1 0 µ A Terminal capacitance C t Ta = 25˚C, V = 0, f = 1MHZ - 60 250 P F Output High level output current I OH V CC =V O = 5.5V, IF = 250µ A - 2 250 µ A Low level output voltage V OL V CC = 5.5V, IF = 5mA, I OL = 13mA - 0.4 0.6 V High level supply current I CCH V CC = 5.5V, IF =0 - 1 4 3 0 m A Low level supply current I CCL V CC = 5.5V, IF = 10mA - 26 36 mA IFHL V CC = 5V, V O = 0.8V, RL = 350Ω - 2.5 5 mA 1011 - Ω C f Ta = 25˚C, V = 0, f = 1MHZ - 0.6 - P F tPHL Ta = 25˚C, VCC =5 V R L = 350Ω , CL =1 5P F IF = 7.5mA -5 0 7 5 n s tPLH -5 0 7 5 n s tr , tf -3 0 6 0 n s CM H Fig. 2Ta = 25˚C, VCC = 5V, VO (MIN ) =2 V V CM = 10V, R L = 350Ω , IF =0 100 500 - V/ µ s CM L Ta = 25˚C, VCC = 5V, V O (MAX ) = 0.8V V CM = 10V, RL = 350Ω , IF = 5mA Fig. 2 - 100 - 500 - V/ µ s Transfer characteristics “ High→ Low ” threshold input current Floating capacitance “ High→ Low ” propagation delay time “ Low→ High ” propagation delay time Rise time, Fall time Response time Instantaneous common mode rejec- tion voltage “ High level output ” CMR Instantaneous common mode rejec- tion voltage “ Low level output ” 350 Ω 47 Ω 0.1µ F 90% 10% 7.5mA 3.75mA 0mA 1.5V IF CL VO Fig. 1 Test Circuit for tPHL , tPLH , tr and tf IF VO tPHL tPLH VOL trtf*CL includes the probe and wiring capacitance. 5x1 010 Fig. 1 ( Unless otherwise specified, Ta = 0 to + 70˚C) Ta = 25˚C, IF = 10mA CC =5 V Isolation resistance All typical values : at Ta = 25˚C, V Ta = 25˚C, DC500V, 40 to 60% RHR ISO
0.1µ F 350Ω 10V IF CL VCM VCM VO VO (IF = 0mA ) (IF = 5mA ) VO (MIN.) VO (MAX.) VOL Fig. 2 Test Circuit for CMH and CM L Ambient Temperature 0 25 50 100 7570 0˚C 25˚C 1.0 0.01 0.1 100 1.5 2.0 50˚C Fig. 4 Forward Current vs. Forward Voltage 0 2 55 07 5 1 0 0 Fig. 5 High Level Output Current vs. Ambient TemperatureHigh level output current IOH ( Aµ ) Ambient temperature Ta (˚C) 0.2 0.3 0.5 0 25 50 100 0.1 0.4 12.8mA 9.6mA 6.4mA Ambient Temperature IO = 16mA Ambient temperature Ta (˚C) Low level output voltage VOL (V ) Fig. 6 Low Level Output Voltage vs. Collector power dissipation PC (mW ) Forward current IF (mA ) Forward voltage VF (V ) IF = 250µA V CC = 5.5V V O = 5.5V IF = 5mA V CC = 5.5V Ambient temperature Ta (˚C) Fig. 3 Collector Power Dissipation vs. T a = 75˚C
1k Ω 4k Ω V CC =5 V R L = 350Ω T a = 25˚C Output current VO (V ) Forward current IF (mA ) Output Voltage VO (V ) Fig. 8 Propagation Delay Time vs. 0 25 50 75 100 Ambient Temperature Fig. 9 Propagation Delay Time vs. Ambient temperature Ta (˚C) 50 100 7525 Ambient temperature Ta (˚C) Fig. 10 Rise Time, Fall Time vs. Ambient Temperature n Precautions for Use Forward current IF (mA ) Propagation delay time tPHL , tPLH (ns) Propagation delay time tPHL , tPLH (ns) (Ambient Temp. Characteristics) Rise time, fall time tr , tf (ns) (1) Handle this product the same as with other Fig. 7-a Output Voltage vs. Forward Current Fig. 7-b Output Voltage vs. Forward Current Forward Current 100 10 155 Forward current I F (mA ) R L = 350Ω R L =1 kΩ V CC =5 V T a = 0 to 70˚C (2) As for other general cautions, refer to V CC = 5V, Ta = 25˚C tPLH RL =4 kΩ tPLH RL =1 kΩ tPHL RL = 350Ω 1k Ω 4k Ω R L = 350Ω 100 I F = 7.5mA, VCC =5 V integrated circuits against static electricity. the chapter “ Precautions for Use ” R L =4 kΩ 4k Ω 1k Ω 350 Ω R L = 350Ω 1k Ω tPLH tPHL 250 200 150 100 R L =4 kΩ IF = 7.5mA V CC =5 Vtr tr tr tf R L = 350Ω R L =1 kΩ R L = 350Ω 1k Ω 4k Ω