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二维范德华混合卤化铅钙钛矿中异常的压力驱动相变和能带重整化

Unusual Pressure-Driven Phase Transformation and Band Renormalization in 2D vdW Hybrid Lead Halide Perovskites.

作者信息

Li Han, Qin Ying, Shan Bohan, Shen Yuxia, Ersan Fatih, Soignard Emmanuel, Ataca Can, Tongay Sefaattin

机构信息

School for Engineering of Matter, Transport and Energy, Arizona State University, Tempe, AZ, 85287, USA.

Department of Physics, Aydin Adnan Menderes University, Aydin, 09100, Turkey.

出版信息

Adv Mater. 2020 Mar;32(12):e1907364. doi: 10.1002/adma.201907364. Epub 2020 Jan 28.

Abstract

The application of high pressure allows control over the unit cell and interatomic spacing of materials without any need for new growth methods or processing while accessing their materials properties in situ. Under these extreme pressures, materials may assume new structural phases and reveal novel properties. Here, unusual phase transition and band renormalization effects in 2D van der Waals Ruddlesden-Popper hybrid lead halide perovskites, which have shown extraordinary optical properties and immense potential in light emission and conversion technologies, are reported. The results show that (CH (CH ) NH ) (CH NH )Pb Br (n = 2) layers undergo two distinct phase transitions related to PbBr octahedra, butylammonium (BA), and methylammonium (MA) molecule tilting motion that leads to rather unique/anomalous bandgap variation with pressure. In contrast, (CH (CH ) NH )PbBr (n = 1) lacks MA molecules and possesses only one pressure-induced phase transition related to PbBr octahedra and BA tilting. In this range, the bandgap reduces monotonically, much similar to other inorganic semiconductors and display surprisingly large redshift from 3 to 2.4 eV. Together with theoretical calculations, this study offers unique insights into these pressure-induced changes and extends the understanding of these highly anisotropic layered soft organic perovskite materials under extreme conditions.

摘要

高压的应用能够控制材料的晶胞和原子间距,无需任何新的生长方法或加工过程,同时可以原位获取材料的性能。在这些极端压力下,材料可能呈现出新的结构相并展现出新颖的性能。在此,报道了二维范德华鲁德尔斯登-波珀混合卤化铅钙钛矿中不同寻常的相变和能带重整化效应,这类材料在发光和转换技术中表现出非凡的光学性能和巨大潜力。结果表明,(CH(CH₂)₃NH₂)₂(CH₃NH₃)Pb₂Br₅(n = 2)层经历了与PbBr₆八面体、丁基铵(BA)和甲基铵(MA)分子倾斜运动相关的两个不同的相变,这导致了带隙随压力呈现相当独特/异常的变化。相比之下,(CH(CH₂)₃NH₂)PbBr₃(n = 1)缺少MA分子,仅具有一个与PbBr₆八面体和BA倾斜相关的压力诱导相变。在此范围内,带隙单调减小,与其他无机半导体非常相似,并且显示出从3到2.4 eV的惊人大红移。结合理论计算,这项研究为这些压力诱导的变化提供了独特的见解,并扩展了对这些极端条件下高度各向异性的层状软有机钙钛矿材料的理解。

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