T-1 3/4 (5 mm) Precision
Optical Performance
InGaN Bluish-Green LED Lamps
Technical Data
HP SunPower Series
HLMP-CE15-TW000
HLMP-CE16-TW000
HLMP-CE23 HLMP-CE30
HLMP-CE24 HLMP-CE31
Features
• Smooth, Consistent Spatial
Radiation Patterns
• High Luminous Output
• Choice of Three Minimum
Luminous Intensities in 23˚
and 30˚ Lamps
• Viewing Angles: 15˚, 23˚
and 30˚
• Superior Resistance to
Moisture
Description
These high intensity bluish-green
LEDs are based on InGaN
material technology. InGaN is the
most efficient and cost effective
material for LEDs in the blue and
green region of the spectrum.
The 505 nm typical dominant
wavelength matches international
specifications for green traffic
signals.
These LED lamps are untinted,
nondiffused, T-1 3/4 packages
incorporating second generation
optics producing 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 resistance in
outdoor signal and sign
applications. The package epoxy
contains both UV-a and UV-b
inhibitors to reduce the effects of
long term exposure to direct
sunlight.
These lamps are available in three
viewing angle options and two
package options to give the
designer flexibility with optical
design and device mounting.
Each part type includes three
choices for minimum luminous
intensity.
Benefits
• Viewing Angles Match
Traffic Signal Requirements
• Superior Performance in
Outdoor Environments
• Suitable for Autoinsertion
onto PC Boards
Applications
•
•
•
•
Traffic Signals
Railroad Signals
Commercial Outdoor Signs
Automotive Interior Lights
CAUTION:
HLMP-CExx LEDs are Class 1 ESD sensitive. Please observe appropriate precautions
during handling and processing. Refer to Hewlett-Packard Application Note AN-1142 for
additional details.
3
Absolute Maximum Ratings at T
A
= 25˚C
Parameter
DC Forward Current
[1]
Peak Forward Current
Average Forward Current
Power Dissipation
Reverse Voltage (I
R
= 100
µA)
LED Junction Temperature
Operating Temperature Range
Storage Temperature Range
Value
30
100
30
120
5
100
–40 to +80
–40 to +100
Units
mA
mA
mA
mW
V
˚C
˚C
˚C
Note:
1. Derate linearly as shown in Figure 4 for temperatures above 50˚C.
Optical Characteristics at T
A
= 25˚C
Luminous
Intensity
I
V [1]
(mcd)
at I
F
= 20 mA
Part Number
HLMP-CE15-TW000
HLMP-CE16-TW000
HLMP-CE23
HLMP-CE24
HLMP-CE23-R0000
HLMP-CE24-R0000
HLMP-CE23-S0000
HLMP-CE24-S0000
HLMP-CE30
HLMP-CE31
HLMP-CE30-P0000
HLMP-CE31-P0000
HLMP-CE30-Q0000
HLMP-CE31-Q0000
Peak
Wavelength
λ
PEAK
(nm)
Typ.
502
502
502
502
502
502
502
502
502
502
502
502
502
502
Color,
Dominant
Wavelength
λ
d[2]
(nm)
Typ.
505
505
505
505
505
505
505
505
505
505
505
505
505
505
Viewing
Angle
2θ
1/2
Degrees
[3]
Typ.
15
15
23
23
23
23
23
23
30
30
30
30
30
30
Min.
2170
2170
1000
1000
1300
1300
1650
1650
590
590
765
765
1000
1000
Typ. Max.
3800
3800
1500
1500
2100
2100
2300
2300
1150
1150
1900
1900
2100
2100
8300
8300
Spectral
Halfwidth
∆λ
1/2
(nm)
35
35
35
35
35
35
35
35
35
35
35
35
35
35
Luminous
Efficacy
[4]
η
V
(lm/W)
350
350
350
350
350
350
350
350
350
350
350
350
350
350
Notes:
1. All InGaN LEDs represented here are IEC825 Class 2. See
Application Brief 1009
and
1015
for details.
2. The dominant wavelength
λd
is derived from the CIE Chromaticity Diagram and represents the perceived color of the device.
3.
θ
1/2
is the off-axis angle where the luminous intensity is 1/2 the peak intensity.
4. Luminous efficacy is the ratio of luminous flux to radiant flux.
4
Electrical Characteristics at T
A
= 25˚C
Reverse
Breakdown
V
R
(Volts) at
I
R
= 100
µ
A
Min.
10
Capacitance
C (pF), V
F
= 0,
f = 1 MHz
Typ.
40
Forward Voltage
V
F
(Volts) at I
F
= 20 mA
Typ.
Max.
3.5
4.0
Thermal
Resistance Rθ
J-PIN
(˚C/W)
240
Intensity Bin Limits
(mcd at 20 mA)
Bin
Name
N
P
Q
R
S
T
U
V
W
X
Min.
680
880
1150
1500
1900
2500
3200
4200
5500
7200
Max.
880
1150
1500
1900
2500
3200
4200
5500
7200
9300
Color Bin Limits
(nm at 20 mA)
Bin
Name
1
2
3
4
Min.
490
495
500
505
Max.
495
500
505
510
Tolerance of each minimum and
maximum =
±
2 nm.
Tolerance of each minimum and
maximum =
±
15 %.
Note:
1. Bin categories are established for classification of products. Products may not be
available in all bin categories. Please contact your Hewlett-Packard representative for
information on currently available bins.
35
FORWARD CURRENT – mA
2.5
INTENSITY NORMALIZED AT 20 mA
1.0
RELATIVE INTENSITY
30
25
20
15
10
5
0
2 2.2 2.4 2.6 2.8 3.0 3.2 3.4 3.6 3.8
FORWARD VOLTAGE – V
2.0
0.8
0.6
0.4
0.2
0
400
1.5
1.0
0.5
0
450
500
550
600
0
10
20
30
40
50
WAVELENGTH – nm
FORWARD CURRENT – mA
Figure 1. Relative Intensity vs.
Wavelength.
Figure 2. Forward Current vs.
Forward Voltage.
Figure 3. Relative Luminous Intensity
vs. Forward Current.
5
40
FORWARD CURRENT – mA
1.0
0.9
NORMALIZED INTENSITY
NORMALIZED INTENSITY
1.2
1.0
0.8
0.6
0.4
0.2
0
-30
35
30
25
20
15
10
5
0
0
20
40
60
80
100
120
0.8
0.7
0.6
0.5
0.4
0.3
0.2
0.1
0
-30
-20
-10
0
10
20
30
-20
-10
0
10
20
30
AMBIENT TEMPERATURE – °C
ANGULAR DISPLACEMENT – DEGREES
ANGULAR DISPLACEMENT – DEGREES
Figure 4. Maximum Forward Current
vs. Ambient Temperature.
Figure 5. Spatial Radiation Pattern –
15˚ Lamps.
Figure 6. Spatial Radiation Pattern –
23˚ Lamps.
1.2
1.0
0.8
0.6
0.4
0.2
0
-40 -30 -20 -10
550
NORMALIZED INTENSITY @ 20 mA
DOMINANT WAVELENGTH – nm
1.0
NORMALIZED INTENSITY
525
0.9
500
0.8
0
10
20
30
40
475
0
10
20
30
40
50
0.7
10
30
50
70
90
ANGULAR DISPLACEMENT – DEGREES
FORWARD CURRENT – mA
AMBIENT TEMPERATURE – °C
Figure 7. Spatial Radiation Pattern –
30˚ Lamps.
Figure 8. Color vs. Forward Current.
Figure 9. Normalized Intensity vs.
Temperature.