FAIRCHILD MV6361A

BICOLOR T-100 (3 mm)
SOLID STATE LED LAMPS
PACKAGE DIMENSIONS
0.122 (3.1)
0.106 (2.7)
HER / AlGaAs RED
MV6661A
GREEN / AlGaAs RED
MV6461A
YELLOW / AlGaAs RED MV6361A
Ø0.137 (3.48)
Ø0.113 (2.88)
CL
0.047 (1.2)
0.032 (0.8)
0.189 (4.8)
0.165 (4.2)
0.059 (1.5)
0.032 (0.8)
FEATURES
1.040 (26.4)
MIN
• Excellent luminous uniformity
Anode for AlGaAs Red
• Wide viewing angle
• Solid state reliability
Anode for
HER, Green
or Yellow
0.040 (1.00)
MIN
0.100 (2.54)
0.020 (0.51)
SQ. (2X)
NOTES:
DESCRIPTION
1. Dimensions for all drawings are in inches (mm).
2. Tolerance is ±0.12” unless otherwise specified.
The MV6X61A series is a bicolor, bipolar LED lamp with
a wide viewing angle of 100°. In particular, MV6461A
offers 4 states - green, red, orange (when AC driven)
and off.
ABSOLUTE MAXIMUM RATINGS
Parameter
(TA = 25°C unless otherwise specified)
AlGaAs Red
HER
Green
Yellow
Units
30
30
30
25
mA
90
90
90
60
mA
Continuous Forward Current - IF
Peak Forward Current - IF
(f = 1.0 KHz, Duty Factor = 1/10)
Reverse Voltage - VR (IR = 10 µA)
Power Dissipation - PD
5
5
5
5
V
135
135
135
95
mW
Operating Temperature - TOPR
-55 to +100
°C
Storage Temperature - TSTG
-55 to +100
°C
Lead Soldering Time - TSOL
260 for 5 sec
°C
 2001 Fairchild Semiconductor Corporation
DS300261
5/4/01
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www.fairchildsemi.com
BICOLOR T-100 (3 mm)
SOLID STATE LED LAMPS
HER / AlGaAs RED
GREEN / AlGaAs RED
YELLOW / AlGaAs RED
ELECTRICAL / OPTICAL CHARACTERISTICS
MV6661A
MV6461A
MV6361A
(TA =25°C)
MV6661A
MV6461A
MV6361A
HER / AlGaAs Red
Green / AlGaAs Red
Yellow / AlGaAs Red
Minimum
2.5/2.5
2.5/2.5
2.5/2.5
Typical
10/10
10/10
10/10
Part Number
Condition
Luminous Intensity (mcd)
IF = 20 mA
Forward Voltage (V)
IF = 20 mA
Maximum
3.0/2.4
3.0/2.4
3.0/2.4
Typical
2.1/1.7
2.1/1.7
2.1/1.7
Peak Wavelength (nm)
635/660
565/660
585/660
IF = 20 mA
Spectral Line Half Width (nm)
45/20
30/20
35/20
IF = 20 mA
Viewing Angle (°)
100°
100°
100°
IF = 20 mA
TYPICAL PERFORMANCE CURVES
2.5
90
IF - FORWARD CURRENT (mA)
RELATIVE LUMNOUS INTENSITY
(NORMALIZED AT 20 mA)
AlGaAs
RED
80
70
HER
60
50
YELLOW
40
30
20
10
2.0
HER
YELLOW
GREEN
1.5
1.0
AlGaAs
RED
0.5
GREEN
0.0
0
1.0
2.0
3.0
4.0
5.0
0
10
15
20
25
30
Fig. 2 Relative Luminous Intensity vs.
DC Forward Current
Fig. 1 Forward Current vs. Forward Voltage
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5
IF - DC FORWARD CURRENT (mA)
VF - FORWARD VOLTAGE (V)
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DS300261
BICOLOR T-100 (3 mm)
SOLID STATE LED LAMPS
HER / AlGaAs RED
GREEN / AlGaAs RED
YELLOW / AlGaAs RED
YELLOW
MV6661A
MV6461A
MV6361A
HER
0˚
10˚
20˚
1.0
30˚
RELATIVE INTENSITY
GREEN
AlGaAs RED
40˚
1.0
0.5
0.9
50˚
0.8
60˚
70˚
0.7
80˚
90˚
0
500
550
600
650
700
0.5
750
WAVELENGTH (nm)
0.3
0.1
0.2
0.4
0.6
REL. LUMINOUS INTENSITY (%)
Fig. 3 Relative Intensity vs. Peak Wavelength
Fig. 4 Radiation Diagram
IF - FORWARD CURRENT (mA)
50
40
HER, GREEN, AlGaAs RED
30
YELLOW
20
10
0
0
20
40
60
80
100
TA - AMBIENT TEMPERATURE (˚C)
Fig. 5 Current Derating Curve
DS300261
5/4/01
3 OF 4
www.fairchildsemi.com
BICOLOR T-100 (3 mm)
SOLID STATE LED LAMPS
HER / AlGaAs RED
GREEN / AlGaAs RED
YELLOW / AlGaAs RED
MV6661A
MV6461A
MV6361A
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 labeling, can be reasonably expected to result in a
significant injury of the user.
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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.
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