MCT5210 Fairchild Optoelectronics Group, MCT5210 Datasheet

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MCT5210

Manufacturer Part Number
MCT5210
Description
OPTOCOUPLER TRANS-OUT 6-DIP
Manufacturer
Fairchild Optoelectronics Group
Datasheet

Specifications of MCT5210

Number Of Channels
1
Input Type
DC
Voltage - Isolation
5300Vrms
Current Transfer Ratio (min)
60% @ 3mA
Voltage - Output
30V
Current - Output / Channel
150mA
Current - Dc Forward (if)
50mA
Vce Saturation (max)
400mV
Output Type
Transistor with Base
Mounting Type
Through Hole
Package / Case
6-DIP
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Current Transfer Ratio (max)
-
Other names
MCT5210GI
MCT5210GI
MCT5210QT
MCT5210QT

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
MCT5210
Manufacturer:
FAIRCHIL
Quantity:
15
Part Number:
MCT5210
Manufacturer:
FAIRCHILD/仙童
Quantity:
20 000
Part Number:
MCT5210SD
Manufacturer:
FAIRCHILD/仙童
Quantity:
20 000
Description
Features
• High CTR
• CTR guaranteed 0°C to 70°C
• High common mode transient rejection 5kV/µs
• Data rates up to 150 kbits/s (NRZ)
• Underwriters Laboratory (UL) recognized (file #E90700)
• VDE recognized (file #94766)
Applications
• CMOS to CMOS/LSTTL logic isolation
• LSTTL to CMOS/LSTTL logic isolation
• RS-232 line receiver
• Telephone ring detector
• AC line voltage sensing
• Switching power supply
© 2003 Fairchild Semiconductor Corporation
The MCT52XX series consists of a high-efficiency AlGaAs, infrared emitting
diode, coupled with an NPN phototransistor in a six pin dual-in-line package.
The MCT52XX is well suited for CMOS to LSTT/TTL interfaces, offering
250% CTR
current of 1.6 mA is supplied data rates to 20K bits/s are possible.
The MCT52XX can easily interface LSTTL to LSTTL/TTL, and with use of an
external base to emitter resistor data rates of 100K bits/s can be achieved.
MCT5200
Parameters
TOTAL DEVICE
Storage Temperature
Operating Temperature
Lead Solder Temperature
Total Device Power Dissipation @ 25°C (LED plus detector)
EMITTER
Continuous Forward Current
Reverse Input Voltage
Forward Current - Peak (1 µs pulse, 300 pps)
LED Power Dissipation
Derate Linearly From 25°C
DETECTOR
Continuous Collector Current
Detector Power Dissipation
– Add option 300 (e.g., MCT5211.300)
Derate Linearly From 25°C
Derate Linearly from 25°C
CE(SAT)
CE(SAT)
comparable to Darlingtons
with 1 mA of LED input current. When an LED input
MCT5201
PHOTOTRANSISTOR OPTOCOUPLERS
Page 1 of 11
MCT5210
Symbol
I
T
T
T
F
P
V
P
P
OPR
STG
SOL
(pk)
I
I
C
F
D
R
D
D
LOW INPUT CURRENT
Device
All
All
All
All
All
All
All
All
All
All
All
All
6
6
CATHODE
ANODE
260 for 10 sec
1
1
-55 to +150
-55 to +100
2
3
1
SCHEMATIC
Value
260
150
150
3.5
3.0
1.0
2.0
50
75
6
6
MCT5211
mW/°C
mW/°C
mW/°C
6
5 COL
4 EMITTER
6/10/03
Units
mW
mW
mW
mA
mA
BASE
1
°C
°C
°C
V
A

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MCT5210 Summary of contents

Page 1

... Reverse Input Voltage Forward Current - Peak (1 µs pulse, 300 pps) LED Power Dissipation Derate Linearly From 25°C DETECTOR Continuous Collector Current Detector Power Dissipation Derate Linearly from 25°C © 2003 Fairchild Semiconductor Corporation LOW INPUT CURRENT PHOTOTRANSISTOR OPTOCOUPLERS MCT5210 Symbol T STG T OPR T SOL ...

Page 2

... CEO All 30 120 CBO All 5 10 EBO All 1 100 All 10 CE All 80 CB All 15 EB Device Min Typ** Max All 5300 11 All 10 All 0.7 MCT5210/11 5000 MCT5200/01 MCT5210/11 5000 MCT5200/01 Units V mV/ ° Units Vac(rms) Ω pF V/µs V/µs 6/10/03 ...

Page 3

... MCT5210 60 CE(SAT) 100 MCT5211 75 MCT5210 70 150 (CE) MCT5211 110 MCT5200 0.2 MCT5201 0.28 MCT5210 0.2 (CB) 0.3 MCT5211 0.25 MCT5200 MCT5201 MCT5210 MCT5211 Device Min Typ 10 MCT5210 MCT5211 PHL 17 24 MCT5200 1.6 MCT5201 3 0.4 MCT5210 8 2.5 11 MCT5211 PLH 7 16 MCT5200 18 MCT5201 12 MCT5200 0 MCT5201 1 ...

Page 4

... ISO 10. Device considered a two terminal device: Pins 1, 2, and 3 shorted together, and pins 5, 6 and 7 are shorted together. © 2003 Fairchild Semiconductor Corporation PHOTOTRANSISTOR OPTOCOUPLERS MCT5210 (T = 0°C to 70°C Unless otherwise specified.) (Continued) A Test Conditions ...

Page 5

... T - AMBIENT TEMPERATURE - °C A Fig. 5 Normalized Collector Base Photocurrent Ratio vs. Forward Current 100 10 1 0.1 0.01 0 FORWARD CURRENT - mA F © 2003 Fairchild Semiconductor Corporation PHOTOTRANSISTOR OPTOCOUPLERS MCT5210 Fig. 2 Normalized Current Transfer Ratio vs. 1.2 1.0 0.8 0.6 0.4 0 100 0 10mA 2mA 5mA F 0 ...

Page 6

... PHL 0 -60 -40 - AMBIENT TEMPERATURE (°C) A © 2003 Fairchild Semiconductor Corporation PHOTOTRANSISTOR OPTOCOUPLERS (Continued 100 100 100 t PLH 100 Page LOW INPUT CURRENT MCT5210 Fig. 8 Switching Time vs. Ambient Temperature 30 Refer to Figure 13 for switching time circuit I = 10mA 330K PLH PHL 0 -60 -40 - AMBIENT TEMPERATURE (°C) A Fig ...

Page 7

... Unless Otherwise Specified 5 Pulse Gen Z = 50Ω 10KHz 10% D. monitor F 330K 100 Ω Figure 13. INPUT 50 90% t PHL ) O t PLH 1.3 V 1 Figure 14. Switching Circuit Waveforms Page LOW INPUT CURRENT MCT5210 MCT5211 330K PHL PLH TEST CIRCUIT 90% 10 6/10/03 ...

Page 8

... MIN 0.022 (0.56) 0.016 (0.41) 0.100 (2.54) TYP Note All dimensions are in inches (millimeters) © 2003 Fairchild Semiconductor Corporation LOW INPUT CURRENT PHOTOTRANSISTOR OPTOCOUPLERS MCT5210 Package Dimensions (Surface Mount) 0.350 (8.89) 0.330 (8.38 0.200 (5.08) 0.165 (4.18) 0.022 (0.56) 0.016 (0.41) ...

Page 9

... MARKING INFORMATION Definitions © 2003 Fairchild Semiconductor Corporation PHOTOTRANSISTOR OPTOCOUPLERS MCT5210 VDE 0884, Surface Mount, Tape and Reel MCT5200 Fairchild logo Device number VDE mark (Note: Only appears on parts ordered with VDE option – See order entry table) Two digit year code, e.g., ‘03’ ...

Page 10

... Time (Minute) © 2003 Fairchild Semiconductor Corporation PHOTOTRANSISTOR OPTOCOUPLERS MCT5210 12.0 ± 0.1 4.0 ± 0.1 0.30 ± 0.05 4.0 ± 0.1 10.30 ± 0.20 User Direction of Feed 215° C, 10–30 s • Peak reflow temperature: 225° C (package surface temperature) • ...

Page 11

... Fairchild Semiconductor Corporation LOW INPUT CURRENT PHOTOTRANSISTOR OPTOCOUPLERS MCT5210 2. A critical component in any component of a life support device or system whose failure to perform can be reasonably expected to cause the failure of the life support device or system affect its safety or effectiveness. ...

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