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层状二维卤化物钙钛矿中的应变传播

Strain propagation in layered two-dimensional halide perovskites.

作者信息

Fu Jianhui, Xu Qiang, Abdelwahab Ibrahim, Cai Rui, Febriansyah Benny, Yin Tingting, Loh Kian Ping, Mathews Nripan, Sun Handong, Sum Tze Chien

机构信息

Division of Physics and Applied Physics, School of Physical and Mathematical Sciences, Nanyang Technological University, 21 Nanyang Link, Singapore 637371, Singapore.

Department of Chemistry, National University of Singapore, 3 Science Drive 3, Singapore 117543, Singapore.

出版信息

Sci Adv. 2022 Sep 16;8(37):eabq1971. doi: 10.1126/sciadv.abq1971.

Abstract

Impulsive light excitation presents a powerful tool for investigating the interdependent structural and electronic responses in layered two-dimensional (2D) halide perovskites. However, detailed understanding of the nonlinear lattice dynamics in these soft hybrid materials remains limited. Here, we explicate the intrinsic strain propagation mechanisms in 2D perovskite single crystals using transient reflection spectroscopy. Ultrafast photoexcitation leads to the generation of strain pulses via thermoelastic (TE) stress and deformation potential (DP) interaction whence their detection proceed via Brillouin scattering. Using a two-temperature model together with strain wave propagation, we discern the TE and DP contributions in strain generation. Hot carrier cooling plays a dominant role in effecting the weak modulation amplitude. Out-of-plane lattice stiffness is reduced by the weak van der Waals bond between organic layers, resulting in a slow strain propagation velocity. Our findings inject fresh insights into the basic strain properties of layered perovskites critical for manipulating their functional properties for new applications.

摘要

脉冲光激发是研究层状二维(2D)卤化物钙钛矿中相互依存的结构和电子响应的有力工具。然而,对这些软混合材料中非线性晶格动力学的详细理解仍然有限。在这里,我们使用瞬态反射光谱法阐明了二维钙钛矿单晶中的固有应变传播机制。超快光激发通过热弹性(TE)应力和形变势(DP)相互作用导致应变脉冲的产生,随后通过布里渊散射对其进行检测。结合双温模型和应变波传播,我们辨别出应变产生过程中TE和DP的贡献。热载流子冷却在影响微弱调制幅度方面起主导作用。有机层之间较弱的范德华键降低了面外晶格刚度,导致应变传播速度较慢。我们的发现为层状钙钛矿的基本应变特性注入了新的见解,这对于操纵其功能特性以用于新应用至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5502/9481117/89da9352078f/sciadv.abq1971-f1.jpg

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