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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Exploring inorganic and nontoxic double perovskites Cs2AgInBr6(1-x)Cl6x from material selection to device design in material genome approach
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Exploring inorganic and nontoxic double perovskites Cs2AgInBr6(1-x)Cl6x from material selection to device design in material genome approach

机译:探索无机和无机毒性双钙质CS2AGINBR6(1-X)CL6x从材料选择到材料基因组方法的装置设计

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Halide double perovskites have recently been proposed as potential environmentally friendly alternatives to organic group and lead-based hybrid halide perovskites. In particular, Cs2BiAgX(6) (X = Cl, Br) have been synthesized and found to exhibit tunable band gaps in the visible range. However, the band gaps of these compounds are indirect, not ideal for applications in thin film photovoltaics. Here in this work we have carried out systematic modeling, using a materials genome approach in the framework of the density functional theory (DFT), to formulate a new system of solar absorption layer based on Cs2InAgX6 and its heterojunction device. Through Cl partial substitution on Br in Cs2InAgBr6 to optimize its thermodynamic stability after the calculation of ATAT proportion searching and Gibbs free energy, we have identified a series of stable cubic-structured phases, with the general formula of Cs2AgInBr6(1-x)Cl6x (0 <= x <= 1). The optimized Cs2InAgBr5Cl compound is a marvelous solar absorption layer to enable harvesting the solar energy, with direct 1.92 eV bandgap and high solar absorption ability, consistent with Cs2InAgBr6 at standard room temperature (298 K). Assembling with anatase as n type TCO and Cs6Ag4In4Br18Cl4 as p type TCO fabricated by introducing Cs-Br defect, the heterojunction is integrated into perovskite solar cells (PSCs) based on the standard n-i-p structure (TiO2-Vo/Cs2InAgBr5Cl/Cs6Ag4In4Br18Cl4), the lattice mismatching and band alignment are evaluated for this well-designed device. (C) 2021 Elsevier B.V. All rights reserved.
机译:卤化物双钙钛矿最近被认为是有机基团和铅基混合卤化物钙钛矿的潜在环境友好替代物。特别是,合成了Cs2BiAgX(6)(X=Cl,Br),发现其在可见光范围内具有可调谐的带隙。然而,这些化合物的带隙是间接的,不适合应用于薄膜光伏。在这项工作中,我们利用密度泛函理论(DFT)框架下的材料基因组方法进行了系统建模,以Cs2InAgX6及其异质结器件为基础,构建了一个新的太阳能吸收层系统。通过对Cs2InAgBr6中Br的Cl部分取代,在计算ATAT比例搜索和Gibbs自由能后优化其热力学稳定性,我们确定了一系列稳定的立方结构相,其通式为Cs2AgInBr6(1-x)Cl6x(0<=x<=1)。经过优化的Cs2InAgBr5Cl化合物是一种奇妙的太阳能吸收层,能够收集太阳能,具有直接1.92 eV带隙和高太阳能吸收能力,与标准室温(298 K)下的Cs2InAgBr6一致。通过引入Cs-Br缺陷,将锐钛矿型as n型TCO和Cs6Ag4In4Br18Cl4组装为p型TCO,将异质结集成到基于标准n-i-p结构(TiO2 Vo/Cs2InAgBr5Cl/Cs6Ag4In4Br18Cl4)的钙钛矿型太阳能电池(PSC)中,对该精心设计的器件的晶格失配和能带对准进行了评估。(c)2021爱思唯尔B.V.保留所有权利。

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