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无铅一维混合钙钛矿的原子级薄片具有自陷激子可调谐的白光发射特性。

Atomically Thin Sheets of Lead-Free 1D Hybrid Perovskites Feature Tunable White-Light Emission from Self-Trapped Excitons.

作者信息

Klement Philip, Dehnhardt Natalie, Dong Chuan-Ding, Dobener Florian, Bayliff Samuel, Winkler Julius, Hofmann Detlev M, Klar Peter J, Schumacher Stefan, Chatterjee Sangam, Heine Johanna

机构信息

Institute of Experimental Physics I and Center for Materials Research (ZfM/LaMa), Justus Liebig University Giessen, Heinrich-Buff-Ring 16, Giessen, D-35392, Germany.

Department of Chemistry and Material Sciences Center, Philipps-Universität Marburg, Hans-Meerwein-Straße, Marburg, D-35043, Germany.

出版信息

Adv Mater. 2021 Jun;33(23):e2100518. doi: 10.1002/adma.202100518. Epub 2021 May 5.

Abstract

Low-dimensional organic-inorganic perovskites synergize the virtues of two unique classes of materials featuring intriguing possibilities for next-generation optoelectronics: they offer tailorable building blocks for atomically thin, layered materials while providing the enhanced light-harvesting and emitting capabilities of hybrid perovskites. This work goes beyond the paradigm that atomically thin materials require in-plane covalent bonding and reports single layers of the 1D organic-inorganic perovskite [C H N] [BiCl ]Cl. Its unique 1D-2D structure enables single layers and the formation of self-trapped excitons, which show white-light emission. The thickness dependence of the exciton self-trapping causes an extremely strong shift of the emission energy. Thus, such 2D perovskites demonstrate that already 1D covalent interactions suffice to realize atomically thin materials and provide access to unique exciton physics. These findings enable a much more general construction principle for tailoring and identifying 2D materials that are no longer limited to covalently bonded 2D sheets.

摘要

低维有机-无机钙钛矿结合了两类独特材料的优点,为下一代光电子学带来了诱人的可能性:它们为原子级薄的层状材料提供了可定制的结构单元,同时具备混合钙钛矿增强的光捕获和发光能力。这项工作突破了原子级薄材料需要面内共价键的范式,报道了一维有机-无机钙钛矿[C₆H₉N₂]₂[BiCl₅]Cl的单层结构。其独特的一维-二维结构使得单层能够形成自陷激子,并呈现出白光发射。激子自陷的厚度依赖性导致发射能量发生极强的偏移。因此,这类二维钙钛矿表明,一维共价相互作用就足以实现原子级薄的材料,并为独特的激子物理学研究提供途径。这些发现为定制和识别二维材料提供了一个更为通用的构建原则,这些二维材料不再局限于共价键合的二维薄片。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd19/11469244/211552c54276/ADMA-33-2100518-g002.jpg

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