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Higher power density limit at COMD in GaInP/AlGaInP in quantum dots than in wells

机译:在量子点中GainP / Algainp中的COMD的较高功率密度限制比井

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Quantum dots (QD) offer significant advantages over quantum wells (QW) as the active material in high power lasers. We have determined power density values at catastrophic optical mirror damage (COMD), a key factor limiting high power laser diode performance, for various QW and QD red and NIR emitting structures in the in the AlGaInP system. The devices used were 50 μm oxide stripe lasers mounted p-side up on copper heatsinks operated pulsed. The COMD power density limit decreases as pulse length increases. At short pulse lengths the limit is higher in QD (19.1±1.1 MW/cm~2) than in QW devices (11.9±2.8 MW/cm~2 and 14.3±0.4 MW/cm~2 for two different spot sizes). We used the high energy Boltzmann tail of the spontaneous emission from the front facet to measure temperature rise to investigate the physical mechanisms (non-radiative recombination of injected carriers and reabsorption of laser light at the facet) leading to COMD and distinguish between the behaviour at COMD of QW and QD devices. Over the range lx to 2xthreshold current the temperature rise in the QW structures was higher. Scanning electron microscopy showed a difference between the QD and QW lasers in the appearance of the damage after COMD.
机译:量子点(QD)与量子孔(QW)的优势具有显着的优点,作为高功率激光器中的活性材料。我们在灾难性的光学镜损伤(COMD)中具有确定的功率密度值,这是一个关键因素限制了高功率激光二极管性能的关键因素,用于在AlGaInP系统中的各种QW和QD红色和NIR发射结构。所用的装置为50μm氧化物条纹激光器安装在铜散热器上的P形侧脉冲。随着脉冲长度的增加,COMD功率密度限制降低。在短脉冲长度,QD(19.1±1.1 mW / cm〜2)的极限高于QW器件(11.9±2.8mW / cm〜2和14.3±0.4 mW / cm〜2,两个不同的点尺寸)。我们使用了从前方的自发发射的高能量Boltzmann尾部来测量温度升高,以研究物理机制(在整个方面的注射载体的非辐射重组和重吸收),导致COMD并区分行为QW和QD设备COMD。在Lx至2xthreshold电流范围内,QW结构中的温度升高更高。扫描电子显微镜显示QD和QW激光器之间的差异在COMD后损坏的外观。

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