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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Relativistic electronic structure and band alignment of BiSI and BiSeI: candidate photovoltaic materials
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Relativistic electronic structure and band alignment of BiSI and BiSeI: candidate photovoltaic materials

机译:BiSI和BiSeI的相对论电子结构和能带对准:候选光伏材料

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Bismuth-based solar absorbers are of interest due to similarities in the chemical properties of bismuth halides and the exceptionally efficient lead halide hybrid perovskites. Whilst they both experience the same beneficial relativistic effects acting to increase the width of the conduction band, bismuth is non-toxic and non-bioaccumulating, meaning the impact of environmental contamination is greatly reduced. Here, we use hybrid density functional theory, with the addition of spin orbit coupling, to examine two candidate bismuth containing photovoltaic absorbers, BiSI and BiSeI, and show that they possess electronic structures suitable for photovoltaic applications. Furthermore, we calculate band alignments against commonly used hole transporting and buffer layers, which indicate band misalignments are likely to be the source of the poor efficiencies reported for devices containing these materials. Based on this we have suggested alternative device architectures expected to result in improved power conversion efficiencies.
机译:由于卤化铋和异常高效的卤化铅杂钙钛矿的化学性质相似,因此铋基太阳能吸收剂备受关注。铋具有相同的有益的相对论效应,可增加导带的宽度,而铋则无毒且无生物蓄积性,这意味着大大减少了环境污染的影响。在这里,我们使用混合密度泛函理论,加上自旋轨道耦合,研究了两种含铋的光伏吸收体BiSI和BiSeI,并证明它们具有适合光伏应用的电子结构。此外,我们针对常用的空穴传输层和缓冲层计算了能带对准度,这表明能带对准误差可能是导致包含这些材料的器件效率低下的原因。基于此,我们提出了可望提高功率转换效率的替代设备架构。

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