Power dissipation Forward current Peak forward current
P
I
F
I
FM*2
Model No. Radiation color Radiation material
(mW)
(mA)
(mA)
LT1EH67A
(T
a
=25˚C)
Derating factor Reverse voltage Operating temperature Storage temperature Soldering temperature
(mA/˚C)
V
R
T
opr
T
stg
T
sol*3
(V)
(˚C)
(˚C)
(˚C)
DC Pulse
350
350
350
350
350
350
-30 to +85 -40 to +100
5
0.40 0.67
50
30
84
Yellow-green GaP
5
0.40 0.67
50
30
-30 to +85 -40 to +100
84
GaAsP on GaP
Yellow
-30 to +85 -40 to +100
Green
5
0.40 0.67
50
30
84
GaP
LT1KS67A
-30 to +85 -40 to +100
Sunset orange GaAsP on GaP
5
0.40 0.67
50
30
84
-30 to +85 -40 to +100
5
Yellow-green GaP
0.40 0.67
50
30
84
LT1ED67A
-30 to +85 -40 to +100
5
0.40 0.67
50
30
84
GaAsP on GaP
Red
*1 The value is specified under the condition that either color is lightened separately. When the both diodes are lightened simultaneously,
the power dissipation of each diode should be less than the half of the value specified in this table.
*2 Duty ratio=1/10, Pulse width=0.1ms
*3 For 3s or less at the temperature of hand soldering. Temperature of reflow soldering is shown on the below page.
s
Electro-optical Characteristics
Radiation
Lens
Model No.
color
type
Yellow-green
Yellow
Milky
Green
diffusion
LT1KS67A
Sunset orange
Yellow-green
LT1ED67A
Red
LT1EH67A
Forward voltage
V
F
(V)
TYP
2.1
2.0
2.1
2.0
2.1
2.0
MAX
2.8
2.8
2.8
2.8
2.8
2.8
Peak emission wavelength
I
F
λ
p
(nm)
(mA)
TYP
20
565
20
585
20
555
20
610
20
565
20
635
Luminous intensity
I
F
I
V
(mcd)
(mA)
TYP
20
19.0
20
8.3
20
3.8
20
6.9
20
19.0
20
8.8
Spectrum radiation bandwidth
I
F
∆λ(nm)
(mA)
TYP
20
30
20
30
20
25
20
35
20
30
20
35
Reverse current
V
R
I
R
(µA)
(V)
MAX
4
10
4
10
4
10
4
10
4
10
4
10
Terminal capacitance
C
t
(pF)
TYP
35
35
40
15
35
20
(T
a
=25˚C)
Page for
characteristics
(MH
Z
)
diagrams
→
1
→
1
→
1
→
1
→
1
→
1
102
¡In
the absence of confirmation by device specification sheets, SHARP takes no responsibility for any defects that may occur in equipment using any SHARP
devices shown in catalogs, data books, etc. Contact SHARP in order to obtain the latest device specification sheets before using any SHARP device.
(Internet)
¡Data
for sharp's optoelectronic/power device is provided for internet.(Address http://www.sharp.co.jp/ecg/)
(Notice)
LED Lamp
EG series
Characteristics Diagrams
Forward Current Derating Curve
60
Forward Current vs. Forward Voltage(Note)
100
50
(T
a=
25˚C)
Luminous Intensity vs. Ambient Temperature(Note)
1000
500
(T
a=
25˚C)
50
Relative luminous intensity(%)
1.2
1.4
1.6
1.8
2.0
2.2
2.4
2.6
Forward current I
F
(mA)
Forward current I
F
(mA)
40
10
5.0
100
50
30
20
1.0
0.5
10
5.0
10
0
-25
0
25
50
75 85
100
125
0.1
1.0
1.0
-20
0
20
40
60
80
100
120
Forward voltage V
F
(V)
Ambient temperature T
a
(
˚C
)
Ambient temperature T
a
(
˚C
)
Peak Forward Current Derating Curve
60
Luminous Intensity vs. Forward Current(Note)
1000
500
(T
a=
25˚C)
Duty Ratio vs. Peak Forward Current
(T
a=
25˚C)
500
200
Peak forward current I
FM
(mA)
100
50
50
Relative luminous intensity(%)
200
100
50
Peak forward current I
FM
(mA)
40
30
20
10
5.0
2.0
20
10
5.0
2.0
1.0
20
10
0
-25
0
25
50
75 85
100
125
1.0
0.1
0.2
0.5
1
2
5
10
20
50
1/50
1/20 1/10
1/5
1/2
1
Ambient temperature T
a
(
˚C
)
Forward current I
F
(mA)
Duty ratio D
R
KG series
Forward Current Derating Curve
60
Forward Current vs. Forward Voltage(Note)
100
50
(T
a=
25˚C)
Luminous Intensity vs. Ambient Temperature(Note)
1000
500
(T
a=
25˚C)
50
Relative luminous intensity(%)
1.2
1.4
1.6
1.8
2.0
2.2
2.4
2.6
Forward current I
F
(mA)
Forward current I
F
(mA)
40
10
5.0
100
50
30
20
1.0
0.5
10
5.0
10
0
-25
0
25
50
75 85
100
125
0.1
1.0
1.0
-20
0
20
40
60
80
100
120
Forward voltage V
F
(V)
Ambient temperature T
a
(
˚C
)
Ambient temperature T
a
(
˚C
)
Peak Forward Current Derating Curve
60
Luminous Intensity vs. Forward Current(Note)
1000
500
(T
a=
25˚C)
Duty Ratio vs. Peak Forward Current
(T
a=
25˚C)
500
200
Peak forward current I
FM
(mA)
100
50
50
Relative luminous intensity(%)
Peak forward current I
FM
(mA)
200
100
50
40
30
20
10
5.0
2.0
20
10
5.0
2.0
1.0
20
10
0
-25
0
25
50
75 85
100
125
1.0
0.1
0.2
0.5
1
2
5
10
20
50
1/50
1/20 1/10
1/5
1/2
1
Ambient temperature T
a
(
˚C
)
Forward current I
F
(mA)
Duty ratio D
R
Note)Characteristics shown in diagrams are typical values. (not assurance value)
120
¡In
the absence of confirmation by device specification sheets, SHARP takes no responsibility for any defects that may occur in equipment using any SHARP
devices shown in catalogs, data books, etc. Contact SHARP in order to obtain the latest device specification sheets before using any SHARP device.
(Internet)
¡Data
for sharp's optoelectronic/power device is provided for internet.(Address http://www.sharp.co.jp/ecg/)
(Notice)
LED Lamp
HS series
Characteristics Diagrams
Forward Current Derating Curve
60
Forward Current vs. Forward Voltage(Note)
100
50
(T
a=
25˚C)
Luminous Intensity vs. Ambient Temperature(Note)
1000
500
Relative luminous intensity(%)
(I
F=
20mA)
50
Forward current I
F
(mA)
40
Forward current I
F
(mA)
20
10
5
3
2
200
30
100
50
20
10
1
0
-25
0.5
1.0
20
10
1.2
1.4
1.6
1.8
2.0
2.2
2.4
-20
0
20
40
60
80
100
Forward voltage V
F
(V)
Ambient temperature T
a
(
˚C
)
0
25
50
75 85
100
125
Ambient temperature T
a
(
˚C
)
Peak Forward Current Derating Curve
60
Luminous Intensity vs. Forward Current(Note)
500
(T
a=
25˚C)
Duty Ratio vs. Peak Forward Current
500
300
(T
a=
25˚C)
50
Relative luminous intensity(%)
Peak forward current I
FM
(mA)
200
Peak forward current I
F
(mA)
100
50
40
100
50
30
30
20
10
5
20
10
2
0
-25
0
25
50
75 85
100
125
1
0.1
0.2
0.5
1
2
5
10
20
50
10
5
1/50
1/20
1/10
1/5
1/2
1
Forward current I
F
(mA)
Duty ratio D
R
Ambient temperature T
a
(
˚C
)
HY series
Forward Current Derating Curve
60
Forward Current vs. Forward Voltage(Note)
100
50
(T
a=
25˚C)
Luminous Intensity vs. Ambient Temperature(Note)
1000
500
(T
a=
25˚C)
50
Relative luminous intensity(%)
1.2
1.4
1.6
1.8
2.0
2.2
2.4
2.6
Forward current I
F
(mA)
40
Forward current I
F
(mA)
10
5.0
100
50
30
20
1.0
0.5
10
5.0
10
0
-25
0
25
50
75 85
100
125
0.1
1.0
1.0
-20
0
20
40
60
80
100
120
Forward voltage V
F
(V)
Ambient temperature T
a
(
˚C
)
Ambient temperature T
a
(
˚C
)
Peak Forward Current Derating Curve
60
Luminous Intensity vs. Forward Current(Note)
1000
500
(T
a=
25˚C)
Duty Ratio vs. Peak Forward Current
(T
a=
25˚C)
500
200
Peak forward current I
FM
(mA)
100
50
50
Relative luminous intensity(%)
200
100
50
Peak forward current I
FM
(mA)
40
30
20
10
5.0
2.0
20
10
5.0
2.0
1.0
20
10
0
-25
0
25
50
75 85
100
125
1.0
0.1
0.2
0.5
1
2
5
10
20
50
1/50
1/20 1/10
1/5
1/2
1
Ambient temperature T
a
(
˚C
)
Forward current I
F
(mA)
Duty ratio D
R
Note)Characteristics shown in diagrams are typical values. (not assurance value)
¡In
the absence of confirmation by device specification sheets, SHARP takes no responsibility for any defects that may occur in equipment using any SHARP
devices shown in catalogs, data books, etc. Contact SHARP in order to obtain the latest device specification sheets before using any SHARP device.
(Internet)
¡Data
for sharp's optoelectronic/power device is provided for internet.(Address http://www.sharp.co.jp/ecg/)
(Notice)
119
LED Lamp
PR series
Characteristics Diagrams
Forward Current Derating Curve
60
Forward Current vs. Forward Voltage(Note)
100
50
(T
a=
25˚C)
Luminous Intensity vs. Ambient Temperature(Note)
1000
500
(T
a=
25˚C)
50
Relative luminous intensity(%)
Forward current I
F
(mA)
Forward current I
F
(mA)
40
10
5.0
100
50
30
20
1.0
0.5
10
5.0
10
0
-25
0
25
50
75 85
100
125
0.1
1.0
1.0
1.2
1.4
1.6
1.8
2.0
2.2
2.4
2.6
-20
0
20
40
60
80
100
120
Forward voltage V
F
(V)
Ambient temperature T
a
(
˚C
)
Ambient temperature T
a
(
˚C
)
Peak Forward Current Derating Curve
60
Luminous Intensity vs. Forward Current(Note)
1000
500
(T
a=
25˚C)
Duty Ratio vs. Peak Forward Current
(T
a=
25˚C)
500
200
Peak forward current I
FM
(mA)
100
50
50
Relative luminous intensity(%)
200
100
50
Peak forward current I
FM
(mA)
40
30
20
10
5.0
2.0
20
10
5.0
2.0
1.0
20
10
0
-25
0
25
50
75 85
100
125
1.0
0.1
0.2
0.5
1
2
5
10
20
50
1/50
1/20 1/10
1/5
1/2
1
Ambient temperature T
a
(
˚C
)
Forward current I
F
(mA)
Duty ratio D
R
Note)Characteristics shown in diagrams are typical values. (not assurance value)
HD series
Forward Current Derating Curve
60
Forward Current vs. Forward Voltage(Note)
100
50
(T
a=
25˚C)
Luminous Intensity vs. Ambient Temperature(Note)
1000
500
(T
a=
25˚C)
50
Relative luminous intensity(%)
1.2
1.4
1.6
1.8
2.0
2.2
2.4
2.6
Forward current I
F
(mA)
Forward current I
F
(mA)
40
10
5.0
100
50
30
20
1.0
0.5
10
5.0
10
0
-25
0
25
50
75 85
100
125
0.1
1.0
1.0
-20
0
20
40
60
80
100
120
Forward voltage V
F
(V)
Ambient temperature T
a
(
˚C
)
Ambient temperature T
a
(
˚C
)
Peak Forward Current Derating Curve
60
Luminous Intensity vs. Forward Current(Note)
1000
500
(T
a=
25˚C)
Duty Ratio vs. Peak Forward Current
(T
a=
25˚C)
500
200
Peak forward current I
FM
(mA)
100
50
50
Relative luminous intensity(%)
200
100
50
Peak forward current I
FM
(mA)
40
30
20
10
5.0
2.0
20
10
5.0
2.0
1.0
20
10
0
-25
0
25
50
75 85
100
125
1.0
0.1
0.2
0.5
1
2
5
10
20
50
1/50
1/20 1/10
1/5
1/2
1
Ambient temperature T
a
(
˚C
)
Forward current I
F
(mA)
Duty ratio D
R
Note)Characteristics shown in diagrams are typical values. (not assurance value)
118
¡
In the absence of confirmation by device specification sheets, SHARP takes no responsibility for any defects that may occur in equipment using any SHARP
devices shown in catalogs, data books, etc. Contact SHARP in order to obtain the latest device specification sheets before using any SHARP device.
(Internet)
¡
Data for sharp's optoelectronic/power device is provided for internet.(Address http://www.sharp.co.jp/ecg/)
:Cry::Cry:I just wrote a long paragraph, but it disappeared after I pressed backspace. Now I will briefly introduce it. First of all, I would like to thank shower.xu. My experiment is based on the pro...
I went hiking on May Day, but there was no signal on the mountain. As a result, it was cut off for a day on May 2. I signed for the 3rd on the road yesterday, but today I saw that yesterday's sign-in ...
On August 23rd, Geely's subsidiary, Jiyao Tongxing, announced it has the industry's largest advanced production capacity for tandao
batteries
, with eight production bases across China. Jiy...[Details]
EtherCAT (Ethernet for Control Automation Technology) is a real-time industrial fieldbus communication protocol based on an Ethernet-based development framework. EtherCAT is one of the fastest indu...[Details]
When you are happily watching NBA or football, your wife asks you to turn off the lights in the bedroom. Would you be depressed? Of course, unless you are not afraid of your wife.
Now you are ...[Details]
Today's security industry has entered the era of massive networking. Many enterprises, especially financial institutions, have established multi-level video surveillance networking platforms. Lever...[Details]
On August 22nd, Lantu Motors unveiled a new technology called "Lanhai Intelligent Hybrid" during a live broadcast of CCTV News' "Top Laboratory." The name sounds like another new term, but a closer...[Details]
According to foreign media reports, secondary battery materials company POSCO Future M announced that it has successfully developed two experimental (prototype) positive electrode materials for the...[Details]
On August 22, Lantu Motors officially launched its Lanhai Intelligent Hybrid technology via an online livestream. This intelligent hybrid technology, which integrates a full-range 800V high-voltage...[Details]
Since the beginning of this year, price wars have intensified, new models have been launched one after another, used cars with zero kilometers have become a hot topic, and the industry's internal c...[Details]
The automotive industry in 2025 is undergoing a thorough intelligent reshuffle.
Geely wants to make changes in the field of AI cockpits: in the future, there will be no traditional smart...[Details]
This paper proposes a temperature real-time transmission and display solution based on LED optical data transmission, with Jingwei Yager low-power FPGA HR (Yellow River) series as the main controll...[Details]
While the current industry consensus is that autonomous vehicles are robots and that their systems are managed using robotics-developed thinking, there are also cases where autonomous driving is ac...[Details]
SMT placement machines are important equipment in surface mount technology (Surface Mount Technology). Their performance has a decisive impact on the quality and efficiency of electronic manufactur...[Details]
Reflow soldering, as an electronics assembly process, has become a vital component of the electronics manufacturing industry. Choosing reflow soldering equipment is crucial for improving production...[Details]
On August 20, Geely announced its focus on "One Cockpit". Through a unified AI OS architecture, a unified AI Agent, and a unified user ID, it will achieve an All-in-One AI cockpit, create the first...[Details]
Tires are a very important component for cars. They are related to the driving experience of the vehicle. We are almost inseparable from cars in our daily lives. For tires, according to the role of...[Details]