HLMP-LD63, HLMP-LM63, HLMP-LB63
Precision Optical Performance Red, Green and Blue
New 4mm Standard Oval LEDs
Data Sheet
Description
These Precision Optical Performance Oval LEDs are spe-
cifically designed for full color/video and passenger infor-
mation signs. The oval shaped radiation pattern and high
luminous intensity ensure that these devices are excellent
for wide field of view outdoor applications where a wide
viewing angle and readability in sunlight are essential.
The package epoxy contains both UV-A and UV-B inhibi-
tors to reduce the effects of long term exposure to direct
sunlight.
Features
•
Well defined spatial radiation pattern
•
High brightness material
•
Available in red, green and blue color.
Red
AlInGaP 630nm
Green InGaN
525nm
Blue
InGaN
470nm
•
Superior resistance to moisture
•
Standoff Package
•
Typical viewing angle 50° x100°
•
Tinted and diffused
Applications
•
Full color signs
Package Dimensions
7.26±0.20
0.286±0.008
21.0
MIN.
0.827
1.25±0.20
0.049±0.008
3.80±0.20
0.1496±0.008
2.54±0.30
0.100±0.012
CATHODE LEAD
NOTE 1
1.0
MIN.
0.039
3.00±0.20
0.118±0.008
10.00±0.50
0.394±0.020
0.80
MAX. EPOXY MENISCUS
0.031
0.45
- 0.04
+0.10
0.018
- 0.002
+0.004
Notes:
All dimensions in millimeters (inches).
Tolerance is ± 0.20mm unless other specified
For Blue and Green if heat sinking application is required, the terminal for heat sink is anode.
Caution:
InGaN devices are Class 1C HBM ESD sensitive per JEDEC Standard. Please observe appropriate
precautions during handling and processing. Refer to Application Note AN-1142 for additional details.
Device Selection Guide
Part Number
HLMP-LD63-SWTZZ
HLMP-LM63-X20ZZ
HLMP-LB63-PT0ZZ
Color and Dominant Wavelength
ld
(nm) Typ
Red 630
Green 525
Blue 470
Luminous Intensity Iv
(mcd) at 20 mA-Min
660
1660
380
Luminous Intensity Iv
(mcd) at 20 mA-Max
1660
4200
960
Tolerance for each intensity limit is ± 15%.
Notes:
1. The luminous intensity is measured on the mechanical axis of the lamp package.
Part Numbering System
HLMP- L x 63 – x x x x x
Packaging Option
ZZ: Flexi Ammopacks
Color Bin Selection
0: Open distribution
T: Red Color, Vf maximum =2.6V
Maximum Intensity Bin
0: No maximum intensity limit
Minimum Intensity Bin
Refer to Device Selection Guide.
Color
B: Blue 470
D: Red 630
M: Green 525
Package
L: 4mm Standard Oval 50° x100°
Note: Please refer to AB 5337 for complete information about part numbering system.
Absolute Maximum Ratings, T
A
= 25°C
Parameter
DC Forward Current
[1]
Peak Forward Current
Power Dissipation
Reverse Voltage
LED Junction Temperature
Operating Temperature Range
Storage Temperature Range
Red
50
100
[2]
130
5 (I
R
= 100 μA)
130
-40 to +100
-40 to +100
Blue and Green
30
100
[3, 4]
111
5 (I
R
= 10 μA)
110
-40 to +85
-40 to +100
Unit
mA
mA
mW
V
°C
°C
°C
Notes:
1. Derate linearly as shown in Figure 2 and Figure 8.
2. Duty Factor 30%, frequency 1kHz.
3. Duty Factor 10%, frequency 1KHz.
4. For long term performance with minimal light output degradation, drive current below 15mA is recommended for Blue LED.
Electrical / Optical Characteristics, T
A
= 25°C
Parameter
Forward Voltage
Red
Green
Blue
Reverse Voltage
Red
Green & blue
Dominant Wavelength
[2]
Red
Green
Blue
Peak Wavelength
Red
Green
Blue
Thermal Resistance
[3]
Luminous Efficacy
[4]
Red
Green
Blue
Luminous Flux
Red
Green
Blue
Luminous Efficiency
[5]
Red
Green
Blue
Symbol
Min.
2.0
2.7
2.7
5
5
622
520
460
Typ.
2.3
3.2
3.2
Max.
2.6
{1]
3.7
3.7
Units
Test Conditions
V
F
V
I
F
= 20 mA
V
R
V
I
R
= 100
mA
I
R
= 10
mA
630
525
470
639
516
464
240
155
530
65
1300
3700
990
30
60
16
634
540
480
I
F
= 20 mA
l
PEAK
Rq
J-PIN
nm
°C/W
Peak of Wavelength of Spectral
Distribution at I
F
= 20 mA
LED Junction-to pin
Emitted Luminous Power/
Emitted
Radiant Power
I
F
= 20 mA
h
V
lm/W
j
V
mlm
h
e
lm/W
Luminous Flux/Electrical Power
I
F
= 20 mA
Notes:
1. For option –xxTxx, The V
F
maximum is 2.6V, refer to VF bin table.
2. The dominant wavelength is derived from the chromaticity Diagram and represents the color of the lamp
3. For AlInGaP Red, thermal resistance applied to LED junction to cathode lead. For InGaN blue and green, thermal resistance applied to LED
junction to anode lead.
4. The radiant intensity, Ie in watts per steradian, may be found from the equation Ie = I
V
/h
V
where IV is the luminous intensity in candelas and
h
V
is
the luminous efficacy in lumens/watt.
5.
h
e
=
j
V
/ I
F
x V
F
, where
j
V
is the emitted luminous flux, I
F
is electrical forward current and V
F
is the forward voltage.
AlInGaP Red
I
F MAX
. - MAXIMUM FORWARD CURRENT - mA
1.0
60
50
40
30
20
10
0
0
20
40
60
T
A
- AMBIENT TEMPERATURE -
80
ο
C
100
RELATIVE INTENSITY
0.5
0
550
600
650
WAVELENGTH - nm
700
Figure 1. Relative Intensity vs Wavelength
Figure 2. Maximum Forward Current vs Ambient Temperature
2.5
2.0
RELATIVE INTENSITY
(NORMALIZED AT 20 mA)
1.5
1.0
0.5
0
50
I
F
- FORWARD CURRENT - mA
40
30
20
10
0
0
0.5
1.0
1.5
2.0
V
F
- FORWARD VOLTAGE - V
2.5
3.0
0
10
30
20
FORWARD CURRENT - mA
40
50
Figure 3. Forward Current vs Forward Voltage
Figure 4. Relative Intensity vs Forward Current
4
InGaN Blue and Green
1.0
0.9
0.8
RELATIVE INTENSITY
0.7
0.6
0.5
0.4
0.3
0.2
0.1
0.0
380
430
480
530
WAVELENGTH - nm
580
630
Blue
Green
FORWARD CURRENT - mA
35
30
25
20
15
10
5
0
0
1
2
FORWARD VOLTAGE - V
3
4
Figure 5. Relative Intensity vs Wavelength
1.6
RELATIVE LUMINOUS INTENSITY
- NORMALIZED AT 20mA
1.4
1.2
1
0.8
0.6
0.4
0.2
0
0
5
Blue
10
15
20
FORWARD CURRENT - mA
25
30
Green
Figure 6. Forward Current vs Forward Voltage
35
30
25
20
15
10
5
0
0
20
40
60
80
T
A
- AMBIENT TEMPERATURE - °C
100
Figure 7. Relative Intensity vs Forward Current
Figure 8. Maximum Forward Current vs Ambient Temperature
7
6
DOMINANT WAVELENGTH SHIFT- nm
5
4
3
2
1
0
-1
-2
-3
FORWARD CURRENT - mA
0
5
10
15
20
25
30
35
Green
Blue
Figure 9. Relative dominant wavelength vs Forward Current
I
F max.
- MAXIMUM FORWARD CURRENT - mA