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The effects of junction interdiffusion and misfit dislocations on the efficiency of highly mismatched heterojunction photovoltaic devices

机译:结间扩散和错配位错对高度失配的异质结光伏器件效率的影响

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摘要

A general modelling methodology has been developed to evaluate the effects of chemical interdiffusion and misfit dislocations on the performance of heterojunction solar cells made from highly mismatched materials. Results for the exemplar materials system CdS-CdTe are contrary to the widely held belief that such interdiffusion is beneficial to photovoltaic performance. In the model, recombination is presumed to take place at the cores of misfit dislocations, with the distribution of these dislocations in the interdiffused layer being calculated so as to minimise the total energy (an incidental result shows that the total number of dislocations is independent of the diffusion profile). The model takes calculated chemical profiles, optical absorption, and dislocation distributions from which the photovoltaic performance and recombination losses are evaluated. It was shown that for the realistic case in which the interdiffused region does not extend beyond the space charge region, the photovoltage losses dominate over any photocurrent gains. Methods to engineer mixed junctions that may increase solar conversion efficiency are discussed.
机译:已经开发出一种通用的建模方法来评估化学相互扩散和错配位错对由高度不匹配的材料制成的异质结太阳能电池性能的影响。示例材料系统CdS-CdTe的结果与人们普遍认为的这种相互扩散有利于光伏性能的观点背道而驰。在该模型中,假定重组发生在错配位错的核心,并且计算了这些位错在相互扩散层中的分布,从而使总能量最小化(附带结果表明,位错的总数与扩散曲线)。该模型采用计算出的化学分布,光吸收和位错分布,从中评估光伏性能和复合损失。结果表明,对于实际情况,其中相互扩散的区域不超出空间电荷区域,光电压损耗在任何光电流增益上都占主导地位。讨论了设计可提高太阳能转换效率的混合结的方法。

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