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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Role of Ligand-Ligand Interactions in the Stabilization of Thin Layers of Tin Bromide Perovskite: An Ab Initio Study of the Atomic and Electronic Structure, and Optical Properties
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Role of Ligand-Ligand Interactions in the Stabilization of Thin Layers of Tin Bromide Perovskite: An Ab Initio Study of the Atomic and Electronic Structure, and Optical Properties

机译:配体 - 配体相互作用的作用在钛溴钙钛矿薄层的稳定化:AB Initio研究原子和电子结构,以及光学性质

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We report results of the state-of-the-art ab initio calculations on two-dimensional (2D) hybrid halide perovskites capped with surface ligands to understand their effects on the stability with respect to bulk MASnBr(3) (MA = CH3NH3). Considering the thinnest (one-unit-cell thick) layers R2SnBr4 with surface ligands of different lengths (R = MA, ethyl ammonium (EA), butyl ammonium (BA), and phenylethyl ammonium (PEA)), it is found that van der Waals (vdW) interactions between the long chain molecules play a crucial role in enhancing the stability of the layers. The vdW contribution in ligand-ligand interactions increases with increasing length of the ligands, and interestingly, the stability of BA(2)SnBr(4) and PEA(2)SnBr(4) layers becomes better than bulk MASnBr(3) and comparable to that of inorganic bulk CsSnBr3. Furthermore, our calculations on the 2D-3D BA(2)SnBr(4) system in which the surface ligands connect the neighboring perovskite layers suggest further enhancement in the stability of the layers. The present study shines light on the role of H center dot center dot center dot Br bonding in deciding the structure of the inorganic part of these thinnest layers and the effect of inclusion of vdW interactions on these H center dot center dot center dot Br bond lengths. The band gap of the layers increases slightly on increasing the length of the ligands, and there is a slight blue shift of the absorption spectrum. All the studied perovskite layers are direct band gap semiconductors, and our results show that the environmentally friendly BA2SnBr4 (PEA(2)SnBr(4)) layers are good candidates for green LEDs with a band gap of similar to 2.28 (2.36) eV as obtained by using the HSE06 hybrid exchange-correlation functional with dispersion correction.
机译:我们向二维(2D)杂交卤化物钙钛矿上的最先进的AB初始计算的结果报告用表面配体的二维(2D)杂交卤化物钙酸盐,以了解它们对散装MASNBR(3)(MA = CH3NH3)的稳定性的影响。考虑到具有不同长度的表面配体的最薄(单单元细胞厚)层R2SNBR4(R = MA,乙基铵(EA),丁基铵(Ba)和苯乙烯铵(豌豆)),发现范德长链分子之间的游感(VDW)相互作用在提高层的稳定性方面发挥着至关重要的作用。 LigAnd-LigAnd相互作用中的VDW贡献随着配体的增加而增加,有趣的是,Ba(2)Snbr(4)和豌豆(2)Snbr(4)层的稳定性比散装MASNBR(3)更好,并且可比较到无机散装CSSNBR3。此外,我们对2D-3D BA(2)SNBR(4)系统的计算,其中所述表面配体连接相邻的PEROVSKITE层表明在所述层的稳定性方面进一步增强。本研究阐明了H中心点中心点中心点Br键合在决定这些最薄层的无机部分的结构以及包含VDW相互作用对这些H中心点中心点中心点Br键Br键Br键合长度的结构的作用。在增加配体的长度时,层的带隙略微增加,并且吸收光谱存在轻微的蓝色偏移。所有研究的钙钛矿层都是直接带隙半导体,我们的结果表明,环保的BA2SNBR4(豌豆(2)SNBR(4))层是具有与2.28(2.36)EV类似的带隙的绿色LED候选者。通过使用具有色散校正的HSE06混合交换相关功能来获得。

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