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Properties of Novel Non-Silicon Materials for Photovoltaic Applications: A First-Principle Insight

机译:用于光伏应用的新型非硅材料的特性:第一原理的见解

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摘要

Due to the low absorption coefficients of crystalline silicon-based solar cells, researchers have focused on non-silicon semiconductors with direct band gaps for the development of novel photovoltaic devices. In this study, we use density functional theory to model the electronic structure of a large database of candidates to identify materials with ideal properties for photovoltaic applications. The first screening is operated at the GGA level to select only materials with a sufficiently small direct band gap. We extracted twenty-seven candidates from an initial population of thousands, exhibiting GGA band gap in the range 0.5–1 eV. More accurate calculations using a hybrid functional were performed on this subset. Based on this, we present a detailed first-principle investigation of the four optimal compounds, namely, TlBiS2, Ba3BiN, Ag2BaS2, and ZrSO. The direct band gap of these materials is between 1.1 and 2.26 eV. In the visible region, the absorption peaks that appear in the optical spectra for these compounds indicate high absorption intensity. Furthermore, we have investigated the structural and mechanical stability of these compounds and calculated electron effective masses. Based on in-depth analysis, we have identified TlBiS2, Ba3BiN, Ag2BaS2, and ZrSO as very promising candidates for photovoltaic applications.
机译:由于基于晶体硅的太阳能电池的吸收系数低,研究人员将注意力集中在具有直接带隙的非硅半导体上,以开发新型光伏器件。在这项研究中,我们使用密度泛函理论对大型候选人数据库的电子结构建模,以识别具有理想性能的光伏应用材料。第一次筛选在GGA级别上进行,以仅选择具有足够小的直接带隙的材料。我们从成千上万的初始人群中提取了27个候选物,它们的GGA带隙在0.5-1 eV范围内。使用混合功能对该子集执行更准确的计算。基于此,我们对四种最佳化合物(TlBiS2,Ba3BiN,Ag2BaS2和ZrSO)进行详细的第一性原理研究。这些材料的直接带隙在1.1和2.26 eV之间。在可见光区域,这些化合物在光谱中出现的吸收峰表明吸收强度高。此外,我们研究了这些化合物的结构和机械稳定性,并计算了电子有效质量。基于深入的分析,我们已经确定TlBiS2,Ba3BiN,Ag2BaS2和ZrSO是光伏应用中非常有希望的候选者。

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