HLMP-CE17/CE18/CE20/CE21/CE32/CE33
T-1 ¾ (5mm) Extra Bright Cyan LEDs
Data Sheet
Description
The high intensity Cyan LEDs are based on the most
efficient and cost effective InGaN material technology.
The 505nm typical dominant wavelength is most suitable
for traffic signal application. These LED lamps are untinted,
non-diffused, T-1¾ packages incorporating second gener-
ation optics which produce well-defined spatial radiation
patterns at specific viewing cone angles.
These lamps are made with an advanced optical grade
epoxy, offering superior temperature and moisture resis-
tance in outdoor sign and signals applications.
Features
•
Viewing Angle: 15°, 23° and 30°
•
Well defined spatial radiation pattern
•
High brightness material
•
Superior resistance to moisture
•
Package options:
- Stand-off and Non Stand-off Leads
•
Untinted and non diffused
Applications
•
Traffic signals
Package Dimensions
A: Non Stand-o
Dimension A
5.00 ±0.20
0.197 ±0.008
1.0 ±0.20
0.039 ±0.008
Ø
0.50 ±0.20 sq. typ.
.020 ±.008
2.540 ±0.2
0.100 ±0.008
Cathode
1.00
min
.039
5.80 ±0.20
0.228 ±0.008
Note 1
25.40
min
0.901
cathode
at
B: Non Stand-o
Dimension A
5.00 ±0.20
0.197 ±0.008
1.0 ±0.20
0.039 ±0.008
1.30 ±0.15
0.051 ±0.006
0.50 ±0.20 sq. typ.
.020 ±.008
2.540 ±0.2
0.100 ±0.008
Cathode
Dimension d
25.40
min
0.901
1.00
min
.039
Ø
5.80 ±0.20
0.228 ±0.008
Note 1
cathode
at
Package
15°
23°
30°
Dimension A
8.70 ± 0.20 mm
8.65 ± 0.20 mm
8.65 ± 0.20 mm
Dimension d
12.40 ± 0.20 mm
12.25 ± 0.20 mm
12.05 ± 0.20 mm
Notes:
1. Measured above flange.
2. All dimensions in millimeters (inches).
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-CE17-240DD
HLMP-CE17-24CDD
HLMP-CE17-24QDD
HLMP-CE20-Z20DD
HLMP-CE20-Z2CDD
HLMP-CE20-Z2QDD
HLMP-CE32-Y10DD
HLMP-CE32-Y1CDD
HLMP-CE32-Y1QDD
HLMP-CE18-240DD
HLMP-CE18-24CDD
HLMP-CE18-24QDD
HLMP-CE21-Z20DD
HLMP-CE21-Z2CDD
HLMP-CE21-Z2QDD
HLMP-CE33-Y10DD
HLMP-CE33-Y1CDD
HLMP-CE33-Y1QDD
Luminous Intensity
Iv (mcd) at 20 mA Min.
21000
21000
21000
12000
12000
12000
9300
9300
9300
21000
21000
21000
12000
12000
12000
9300
9300
9300
Luminous Intensity
Iv (mcd) at 20 mA Max.
45000
45000
45000
27000
27000
27000
21000
21000
21000
45000
45000
45000
27000
27000
27000
21000
21000
21000
Stand-Off
No
No
No
No
No
No
No
No
No
Yes
Yes
Yes
Yes
Yes
Yes
Yes
Yes
Yes
Tolerance for each intensity limit is ± 15%.
Notes:
1. The luminous intensity is measured on the mechanical axis of the lamp package.
2. Tolerance for each intensity limit is ± 15%.
3. Please refer to AN 5352 for detail information on features of stand-off and non stand-off LEDs.
Part Numbering System
HLMP -C E x x – x x x xx
Packaging Option
DD: Ammopack
Color Bin Selection
0: Full color bin
C: Color bin 3 & 4
Q: Color bin 7 & 8
Maximum Intensity Bin
Minimum Intensity Bin
Refer to Device Selection Guide
Refer to Device Selection Guide
Viewing Angle and Lead Stands-o s
17: 15° without stand-o
18: 15° with stand-o
20: 23° without stand-o
21: 23° with stand-o
32: 30° without stand-o
33: 30° with stand-o
Note: Please refer to AB 5337 for complete information about part numbering system.
2
Absolute Maximum Ratings
T
J
= 25°C
Parameter
DC Forward Current
[1]
Peak Forward Current
Power Dissipation
Reverse Voltage
Operating Temperature Range
Storage Temperature Range
Notes:
1. Derate linearly as shown in Figure 5.
2. Duty Factor 10%, frequency 1KHz.
Value
30
100
[2]
107
-40 to +85
-40 to +85
Unit
mA
mA
mW
°C
°C
Not recommended for reverse bias
Electrical / Optical Characteristics
T
A
= 25°C
Parameter
Forward Voltage
Reverse Voltage
[1]
Dominant Wavelength
[2]
Peak Wavelength
Spectral Halfwidth
Thermal Resistance
Luminous Efficacy
[3]
Symbol
V
F
V
R
λ
d
λ
PEAK
∆λ
1/2
Rθ
J-PIN
η
V
Min.
2.8
5
Typ.
3.0
505
501
25
240
283
Max.
3.5
Units
V
V
nm
nm
Test Conditions
I
F
= 20 mA
I
R
= 10
mA
I
F
= 20 mA
Peak of Wavelength of Spectral
Distribution at I
F
= 20 mA
Wavelength width at spectral distri-
bution ½ power point at I
F
= 20 mA
°C/W
lm/W
LED Junction-to-Cathode Lead
Emitted Luminous Power/Emitted
Radiant Power
Notes:
1. Indicates product final testing condition. Long term reverse bias is not recommended.
2. The dominant wavelength is derived from the chromaticity Diagram and represents the color of the lamp. Tolerance for each color of dominant
wavelength is ± 0.5nm.
3. The radiant intensity, Ie in watts per steradian, may be found from the equation Ie = I
V
/η
V
where I
V
is the luminous intensity in candelas and
η
V
is
the luminous efficacy in lumens/watt.
3
500
550
600
WAVELENGTH - nm
Figure 1. Relative Intensity vs Wavelength
1
0.9
0.8
0.7
0.6
0.5
0.4
0.3
0.2
0.1
0
400
30
25
FORWARD CURRENT - mA
20
15
10
5
0
0
0.5
1
3
3.5
RELATIVE INTENSITY
450
650
700
1.5
2
2.5
FORWARD VOLTAGE - V
Figure 2. Forward Current vs Forward Voltage
1.4
DOMINANT WAVELENGTH SHIFT - nm
0
5
10
15
20
DC FORWARD CURRENT
25
30
RELATIVE LUMINOUS INTENSITY
(NORMALIZED AT 20 mA)
1.2
1
0.8
0.6
0.4
0.2
0
4
3
2
1
0
-1
-2
0
5
10
15
20
FORWARD CURRENT - mA
25
30
Figure 3. Relative Intensity vs Forward Current
Figure 4. Relative Dominant Wavelength vs Forward Current
IDC MAX -MAX. ALLOWABLE DC CURRENT - mA
35
30
25
20
15
10
5
0
0
20
40
60
80
TA - AMBIENT TEMPERATURE - °C
100
NORMALIZED INTENSITY
1
0.8
0.6
0.4
0.2
0
-90
-60
-30
0
30
60
90
ANGULAR DISPLACEMENT - DEGREES
-
Figure 6. Representative Spatial Radiation Pattern – 15° Lamps
Figure 5. Maximum Forward Current vs Ambient Temperature
4
1
0.8
0.6
0.4
0.2
0
-90
-60
-30
0
30
60
ANGULAR DISPLACEMENT - DEGREES
90
1
NORMALIZED INTENSITY
0.8
0.6
0.4
0.2
0
-90
-60
-30
0
30
60
ANGULAR DISPLACEMENT - DEGREES
90
Figure 7. Representative Spatial Radiation Pattern – 23° Lamps
NORMALIZED INTENSITY
Figure 8. Representative Spatial Radiation Pattern – 30° Lamps
10
FORWARD VOLTAGE SHIFT- V
-20
0
20
40
60
T
J
- JUNCTION TEMPERATURE- °C
80
100
RELATIVE LIGHT OUTPUT
(NORMALIZED AT T
J
+ 25°C)
0.4
0.3
0.2
0.1
0
-0.1
-0.2
-40
-20
0
20
40
60
T
J
- JUNCTION TEMPERATURE- °C
80
100
1
0.1
-40
Figure 9. Relative Light Output vs Junction Temperature
Figure 10. Forward Voltage Shift vs Junction Temperature
5