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 SMALL OUTLINE OPTOCOUPLERS DARLINGTON OUTPUT MOC223-M
DESCRIPTION
The MOC223-M consists of a gallium arsenide infrared emitting diode optically coupled to a monolithic silicon photodarlington detector, in a surface mountable, small outline, plastic package. It is ideally suited for high density applications, and eliminates the need for through - the - board mounting.
FEATURES
* U.L. Recognized (File #E90700, Volume 2) * VDE Recognized (File #136616) (add option "V" for VDE approval, i.e, MOC223V-M) * Industry Standard SOIC-8 Surface Mountable Package with 0.050" lead spacing * High Current Transfer Ratio of 500% Minimum at IF = 1 mA * Standard SOIC-8 Footprint, with 0.050" Lead Spacing * Compatible with Dual Wave, Vapor Phase and IR Reflow Soldering * High Input-Output Isolation Voltage of 2500 VAC(rms) Guaranteed
ANODE 1
8 N/C
CATHODE 2
7 BASE
N/C 3
6 COLLECTOR
APPLICATIONS
* Low Power Logic Circuits * Interfacing and coupling systems of different potentials and impedances * Telecommunications equipment * Portable electronics * Solid state relays
N/C 4
5 EMITTER
ABSOLUTE MAXIMUM RATINGS (TA = 25C Unless otherwise specified)
Rating EMITTER Forward Current - Continuous Forward Current - Peak (PW = 100 s, 120 pps) Reverse Voltage LED Power Dissipation @ TA = 25C Derate above 25C DETECTOR Collector-Emitter Voltage Emitter-Collector Voltage Collector-Base Voltage Collector Current-Continuous Detector Power Dissipation @ TA = 25C Derate above 25C TOTAL DEVICE Input-Output Isolation Voltage (f = 60 Hz, t = 1 min.) Total Device Power Dissipation @ TA = 25C Derate above 25C Ambient Operating Temperature Range Storage Temperature Range Symbol IF IF (pk) VR PD VCEO VECO VCBO IC PD Value 60 1.0 6.0 90 0.8 30 7.0 70 150 150 1.76 Unit mA A V mW mW/C V V V mA mW mW/C
VISO PD TA Tstg
2500 250 2.94 -40 to +100 -40 to +150
Vac(rms) mW mW/C C C
(c) 2002 Fairchild Semiconductor Corporation
Page 1 of 7
7/17/02
SMALL OUTLINE OPTOCOUPLERS DARLINGTON OUTPUT MOC223-M
ELECTRICAL CHARACTERISTICS (TA = 25C unless otherwise specified)
Parameter EMITTER Input Forward Voltage Reverse Leakage Current Input Capacitance DETECTOR Collector-Emitter Dark Current Collector-Emitter Breakdown Voltage Emitter-Collector Breakdown Voltage Collector-Emitter Capacitance COUPLED Current Transfer Ratio(3) Isolation Isolation Surge Voltage(1,2) Resistance(2) (IF = 1.0 mA, VCE = 5.0 V) (f = 60 Hz AC Peak, t = 1 min.) (V = 500 V) (VI-O = 0 V, f = 1 MHz) (fig. 6)(IF = 5.0 mA, VCC = 10 V, RL = 100 ) (fig. 6)(IF = 5.0 mA, VCC = 10 V, RL = 100 ) (fig. 6)(IF = 5.0 mA, VCC = 10 V, RL = 100 ) (fig. 6)(IF = 5.0 mA, VCC = 10 V, RL = 100 ) CTR VISO RISO CISO ton toff tr tf 500 2500 1011 -- -- -- -- -- -- 1000 -- -- -- 0.2 3.5 95 1.0 2.0 -- -- -- 1.0 -- -- -- -- -- % Vac(rms) V pF s s s s (VCE = 5.0 V, TA = 25C) (VCE = 5.0 V, TA = 100C) (IC = 100 A) (IE = 100 A) (f = 1.0 MHz, VCE = 0) ICEO1 ICEO2 BVCEO BVECO CCE -- -- 30 7.0 -- 1.0 10 100 10 5.5 50 -- -- -- -- nA A V V pF (IF = 1.0 mA) (VR = 6.0 V) VF IR CIN -- -- -- 1.08 0.001 18 1.3 100 -- V A pF Test Conditions Symbol Min Typ* Max Unit
Collector-Emitter Saturation Voltage Isolation Capacitance(2) Turn-On Time Turn-Off Time Rise Time Fall Time *All typicals at TA = 25C
(IC = 500 A, IF = 1.0 mA) VCE (sat)
1. Isolation Surge Voltage, VISO, is an internal device dielectric breakdown rating. 2. For this test, Pins 1 and 2 are common and Pins 5, 6 and 7 are common. 3. Current Transfer Ratio (CTR) = IC/IF x 100%.
(c) 2002 Fairchild Semiconductor Corporation
Page 2 of 7
7/17/02
SMALL OUTLINE OPTOCOUPLERS DARLINGTON OUTPUT MOC223-M
Fig. 1 LED Forward Voltage vs. Forward Current
1.8 10
Fig. 2 Output Curent vs. Input Current
I C - OUTPUT COLLECTOR CURRENT (NORMALIZED)
1.7
VF - FORWARD VOLTAGE (V)
1.6
1.5
1.4 TA = -55C 1.3 TA = 25C
1
1.2
1.1
TA = 100C
1.0 1 10 100
IF - LED FORWARD CURRENT (mA)
VCE = 5V NORMALIZED TO I F = 1mA 0.1 0.1 1 10 100
Fig. 3 Output Current vs. Ambient Temperature
10
IF - LED INPUT CURRENT (mA)
Fig. 4 Output Current vs. Collector - Emitter Voltage
2.0
I C - OUTPUT COLLECTOR CURRENT (NORMALIZED)
I C - OUTPUT COLLECTOR CURRENT (NORMALIZED)
1.8 1.6 1.4 1.2 1.0 0.8 0.6 0.4 0.2 0.0 0 1 2 3 4 5 6
1
0.1
0.01 -80 -60 -40 -20 0 20
IF = 1mA, VCE = 5V NORMALIZED TO TA = 25oC 40 60
o
80
100
120
IF = 1mA NORMALIZED TO VCE = 5V 7 8 9 10
TA - AMBIENT TEMPERATURE ( C)
VCE - COLLECTOR -EMITTER VOLTAGE (V)
Fig. 5 Dark Current vs. Ambient Temperature
10 5
I CEO - COLLECTOR -EMITTER DARK CURRENT (nA)
10 4 VCE = 10V NORMALIZED TO TA= 25 oC
10 3
10 2
10 1
10 0
10 -1
10 -2 0 20 40 60
o
80
100
TA - AMBIENT TEMPERATURE ( C)
(c) 2002 Fairchild Semiconductor Corporation
Page 3 of 7
7/17/02
SMALL OUTLINE OPTOCOUPLERS DARLINGTON OUTPUT MOC223-M
TEST CIRCUIT
VCC = 10V
INPUT PULSE
WAVE FORMS
IF INPUT RBE
IC
RL
10% 90% tr ton tf toff OUTPUT PULSE
OUTPUT
Figure 6. Switching Time Test Circuit and Waveforms
(c) 2002 Fairchild Semiconductor Corporation
Page 4 of 7
7/17/02
SMALL OUTLINE OPTOCOUPLERS DARLINGTON OUTPUT MOC223-M
Package Dimensions (Surface Mount) 8-Pin Small Outline
0.024 (0.61)
0.164 (4.16) 0.144 (3.66)
SEATING PLANE
0.060 (1.52)
PIN1 0.202 (5.13) 0.182 (4.63)
0.275 (6.99) 0.155 (3.94)
0.010 (0.25) 0.006 (0.16)
0.143 (3.63) 0.123 (3.13)
0.021 (0.53) 0.011 (0.28)
0.008 (0.20) 0.003 (0.08) 0.050 (1.27) TYP
0.244 (6.19) 0.224 (5.69)
0.050 (1.27)
Lead Coplanarity : 0.004 (0.10) MAX
(c) 2002 Fairchild Semiconductor Corporation
Page 5 of 7
7/17/02
SMALL OUTLINE OPTOCOUPLERS DARLINGTON OUTPUT MOC223-M
ORDERING INFORMATION
Option V R1 R1V R2 R2V Order Entry Identifier V R1 R1V R2 R2V Description VDE 0884 Tape and reel (500 units per reel) VDE 0884, Tape and reel (500 units per reel) Tape and reel (2500 units per reel) VDE 0884, Tape and reel (2500 units per reel)
Carrier Tape Specifications
8.0 0.10 3.50 0.20 0.30 MAX 4.0 0.10 2.0 0.05 O1.5 MIN 1.75 0.10
5.5 0.05 8.3 0.10 12.0 0.3 5.20 0.20
0.1 MAX
6.40 0.20
O1.5 0.1/-0
User Direction of Feed
(c) 2002 Fairchild Semiconductor Corporation
Page 6 of 7
7/17/02
SMALL OUTLINE OPTOCOUPLERS DARLINGTON OUTPUT MOC223-M
DISCLAIMER FAIRCHILD SEMICONDUCTOR RESERVES THE RIGHT TO MAKE CHANGES WITHOUT FURTHER NOTICE TO ANY PRODUCTS HEREIN TO IMPROVE RELIABILITY, FUNCTION OR DESIGN. FAIRCHILD DOES NOT ASSUME ANY LIABILITY ARISING OUT OF THE APPLICATION OR USE OF ANY PRODUCT OR CIRCUIT DESCRIBED HEREIN; NEITHER DOES IT CONVEY ANY LICENSE UNDER ITS PATENT RIGHTS, NOR THE RIGHTS OF OTHERS. LIFE SUPPORT POLICY FAIRCHILD'S PRODUCTS ARE NOT AUTHORIZED FOR USE AS CRITICAL COMPONENTS IN LIFE SUPPORT DEVICES OR SYSTEMS WITHOUT THE EXPRESS WRITTEN APPROVAL OF THE PRESIDENT OF FAIRCHILD SEMICONDUCTOR CORPORATION. As used herein: 1. Life support devices or systems are devices or systems which, (a) are intended for surgical implant into the body, or (b) support or sustain life, and (c) whose failure to perform when properly used in accordance with instructions for use provided in the labeling, can be reasonably expected to result in a significant injury of the user. 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, or to affect its safety or effectiveness.
(c) 2002 Fairchild Semiconductor Corporation
Page 7 of 7
7/17/02


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