首页> 外文会议>ASME International Technical Conference on Packaging and Integration of Electronic and Photonic Microsystems >CORRELATED EFFECTS OF SELF-HEATING, LIGHT OUTPUT, AND EFFICIENCY OF GAN LIGHT-EMITTING DIODES ON JUNCTION TEMPERATURE
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CORRELATED EFFECTS OF SELF-HEATING, LIGHT OUTPUT, AND EFFICIENCY OF GAN LIGHT-EMITTING DIODES ON JUNCTION TEMPERATURE

机译:自加热,光输出和GAN发光二极管对结温的影响

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With the advent of GaN as the major material system in the solid-state lighting industry-high power, high brightness LEDs with wavelength ranging from near UV to white are getting fabricated and part of a tremendously large and ever-increasing market. However, device self-heating and environment temperature significantly deteriorates the LED"s optical performance. Hence, it is extremely important to quantify the device self-heating and its impact on optical performance. In this work, three different characterization techniques were used to calculate temperature rise due to self-heating for an InGaN/GaN LED with 5 pairs of multiple quantum wells. The impact of self-heating and increased environment temperature on the device optical performance were also studied. Nanoparticle assisted Raman thermometry was used for the first time to measure the LED mesa surface temperature. The temperature measured using this technique was compared with temperature data obtained by using the forward voltage method and infrared (IR) thermography. The IR and Raman measurement results were in close agreement while the temperature data obtained from forward voltage method underestimated the temperature by 5-10%. It was also observed that due to environment temperature increase from 25°C to 100°C, LED optical power output drops by 12%.
机译:随着GaN成为固态照明行业中主要的材料系统的出现,大功率,波长范围从近紫外线到白光的高亮度LED逐渐被制造出来,并成为一个巨大且不断增长的市场的一部分。但是,器件的自热和环境温度会大大降低LED的光学性能。因此,量化器件的自热及其对光学性能的影响非常重要。在这项工作中,使用了三种不同的表征技术来计算具有5对多量子阱的InGaN / GaN LED自热引起的温度升高;研究了自热和环境温度升高对器件光学性能的影响;首次使用纳米粒子辅助拉曼测温测量该LED台面的表面温度,并将该技术测量的温度与正向电压法和红外(IR)热成像法获得的温度数据进行比较,IR和拉曼测量结果与正向电压法获得的温度数据非常吻合电压法低估了温度5-10%,还观察到由于环境温度从25°C升高到100°C,LED光功率输出下降12%。

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