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Impact of Photon Recycling on GaAs Solar Cell Designs

机译:光子回收对GaAs太阳能电池设计的影响

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Radiatively dominated III–V semiconductor solar cells are strongly influenced by the effects of photon recycling. From a modeling standpoint, the semiconductor transport equations must account for this to predict accurate open-circuit voltages, even for cells on substrate. Using Shockley–Read–Hall (SRH) lifetimes based on internal quantum efficiency measurements, the current–voltage characteristics of cells on substrate and thin-film cells (where the substrate is removed) are predicted to good accuracy. Using this calibrated photon recycling model, the influences of base thickness and SRH lifetimes on device performance are studied in order to determine an optimal cell design using a conventional silver back reflector and a near-perfect back reflector. The result is efficiencies of >28% under AM1.5g standard testing conditions for thin-film cells with electron and hole SRH lifetimes of 1 μs and 100 ns, respectively. Finally, the doping concentration in the emitter is found to be unimportant in dictating the cell's open-circuit voltage as the cell approaches the radiative limit, whereas for nonradiatively dominated cells, the open-circuit voltage is found to depend on the cell's built-in voltage via emitter doping.
机译:辐射占优势的III–V半导体太阳能电池受光子循环利用的影响很大。从建模的角度来看,半导体传输方程必须考虑到这一点,以预测准确的开路电压,即使对于基板上的电池也是如此。使用基于内部量子效率测量值的Shockley-Read-Hall(SRH)寿命,可以预测衬底和薄膜电池(去除了衬底的电池)上的电池的电流-电压特性具有良好的准确性。使用此校准的光子回收模型,研究了基底厚度和SRH寿命对器件性能的影响,以便确定使用常规银背反射器和近乎完美的背反射器的最佳电池设计。结果是,在AM1.5g标准测试条件下,薄膜电子电池的电子和空穴SRH寿命分别为1μs和100 ns的效率达到28%以上。最后,发现当发射器接近辐射极限时,发射极中的掺杂浓度对于决定其开路电压并不重要,而对于非辐射控制的发射器,开路电压取决于发射器的内置电压发射极掺杂产生的电压。

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