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Mechanism of improved crystallinity by defect-modification in proton-irradiated GaAsPN photovoltaics: Experimental and first-principle calculations approach

机译:质子辐照GaAsPN光伏缺陷修饰提高结晶度的机理:实验和第一性原理计算方法

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摘要

This study presents a new model for point-defect modification in III-V-N alloys through first-principle calculations and several validation experiments conducted in our previous study, which explain the enhanced crystallinity of III-V-N alloys caused by proton irradiation and rapid thermal annealing (RTA). Validation experiments clarified that the conversion efficiency of the GaAsPN solar cell increased after proton irradiation followed by RTA, whereas that of the GaP solar cell decreased after the same process. Thus, the improved crystallinity of the GaAsPN alloy by this process is attributed to the decrease in nitrogen-related point defects in the crystal. The detailed annihilation mechanism of the nitrogen-related point defect was then studied using first-principle calculations demonstrating that the representative nitrogen-related point defects can change to a lower-energy state when a vacancy forms at its neighboring group V site, leading to the annihilation of the defects. It was concluded that vacancies created by proton irradiation enhance the annihilation of nitrogen-related point defects. Published under an exclusive license by AIP Publishing.
机译:本研究通过第一性原理计算和前期研究的多次验证实验,提出了III-V-N合金点缺陷改性的新模型,解释了质子辐照和快速热退火(RTA)导致III-V-N合金结晶度的增强。验证实验表明,GaAsPN太阳能电池的转换效率在质子辐照后RTA后增加,而GaP太阳能电池的转换效率在相同过程后下降。因此,该工艺提高了GaAsPN合金的结晶度,这归因于晶体中与氮相关的点缺陷的减少。然后,利用第一性原理计算研究了氮相关点缺陷的详细湮灭机理,表明当相邻的V组位点形成空位时,具有代表性的氮相关点缺陷可以转变为低能态,从而导致缺陷的湮灭。得出的结论是,质子辐照产生的空位增强了氮相关点缺陷的湮灭。在 AIP Publishing 的独家许可下发布。

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