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HLMP-4101-SQ000 Datasheet(PDF) 3 Page - Agilent(Hewlett-Packard) |
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HLMP-4101-SQ000 Datasheet(HTML) 3 Page - Agilent(Hewlett-Packard) |
3 / 6 page 3 Absolute Maximum Ratings at TA = 25°C Parameter Maximum Rating Units Peak Forward Current[1, 2] 300 mA Average Forward Current[2] 20 mA DC Current[3] 30 mA Power Dissipation 87 mW Reverse Voltage (IR = 100 µA) 5 V Transient Forward Current (10 µs Pulse)[4] 500 mA Operating Temperature Range -20 to +100 °C Storage Temperature Range -55 to +100 °C Wave Soldering Temperature [1.59 mm (0.063 in.) from body] 250 °C for 3 seconds Lead Solder Dipping Temperature [1.59 mm (0.063 in.) from body] 260 °C for 5 seconds Notes: 1. Maximum IPEAK at f = 1 kHz, DF = 6.7%. 2. Refer to Figure 6 to establish pulsed operating conditions. 3. Derate linerally as shown in Figure 5. 4. The transient peak current is the maximum non-recurring peak current the device can withstand without damaging the LED die and wire bonds. It is not recommended that the device be operated at peak currents beyond the Absolute Maximum Peak Forward Current. Electrical/Optical Characteristics at TA = 25°C Symbol Description Min. Typ. Max. Unit Test Condition VF Forward Voltage 1.8 2.2 V 20 mA VR Reverse Breakdown Voltage 5.0 15.0 V IR = 100 µA λ PEAK Peak Wavelength 650 nm Measurement at peak λ d Dominant Wavelength 642 nm Note 1 ∆λ 1/ 2 Spectral Line Halfwidth 20 nm τs Speed of Response 30 ns Exponential Time Constant, e-t/2 C Capacitance 30 pF VF = 0, f = 1 MHz θjc Thermal Resistance 220 °C/W Junction to Cathode Lead ηv Luminous Efficacy 80 1 m/W Note 2 Notes: 1. The dominant wavelength, λd, is derived from the CIE chromaticity diagram and represents the color of the device. 2. The radiant intensity, Ie, in watts per steradian, may be found from the equation Ie = Iv/ ηv, where Iv is the luminous intensity in candelas and ηv is luminous efficacy in lumens/watt. 3. The approximate total luminous flux output within a cone angle of 2 θ about the optical axis, φv(2θ), may be obtained from the following formula: φv(2θ) = [φv(θ)/Iv(0)]Iv; Where: φv(θ)/Iv(0) is obtained from Figure 7. |
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