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钙钛矿单晶中声子驱动的瞬态带隙重整化

Phonon-driven transient bandgap renormalization in perovskite single crystals.

作者信息

Wang Lijie, Wang Hong, Nughays Razan, Ogieglo Wojciech, Yin Jun, Gutiérrez-Arzaluz Luis, Zhang Xinyuan, Wang Jian-Xin, Pinnau Ingo, Bakr Osman M, Mohammed Omar F

机构信息

Advanced Membranes and Porous Materials Centre (AMPM), Division of Physical Science and Engineering, King Abdullah University of Science and Technology, Thuwal 23955-6900, Kingdom of Saudi Arabia.

KAUST Catalysis Centre, Division of Physical Sciences and Engineering, King Abdullah University of Science and Technology, Thuwal 23955-6900, Kingdom of Saudi Arabia.

出版信息

Mater Horiz. 2023 Oct 2;10(10):4192-4201. doi: 10.1039/d3mh00570d.

Abstract

Tailoring the electronic structure of perovskite materials on ultrafast timescales is expected to shed light on optimizing optoelectronic applications. However, the transient bandgap renormalization observed upon photoexcitation is commonly explained by many-body interactions of optically created electrons and holes, which shrink the original bandgap by a few tens of millielectronvolts with a sub-picosecond time constant, while the accompanying phonon-induced effect remains hitherto unexplored. Here we unravel a significant contribution of hot phonons in the photo-induced transient bandgap renormalization in MAPbBr single crystals, as evidenced by asymmetric spectral evolutions and transient reflection spectral shifts in the picosecond timescale. Moreover, we performed a spatiotemporal study upon optical excitation with time-resolved scanning electron microscopy and identified that the surface charge carrier diffusion and transient bandgap renormalization are strongly correlated in time. These findings highlight the need to re-evaluate current theories on photo-induced bandgap renormalization and provide a new approach for precisely controlling the optical and electronic properties of perovskite materials, enabling the design and fabrication of high-performance optoelectronic devices with exceptional efficiency and unique properties.

摘要

在超快时间尺度上调整钙钛矿材料的电子结构有望为优化光电器件提供启示。然而,光激发时观察到的瞬态带隙重整化通常由光生电子和空穴的多体相互作用来解释,这种相互作用会使原始带隙以亚皮秒时间常数缩小几十毫电子伏特,而伴随的声子诱导效应迄今仍未得到探索。在此,我们揭示了热声子在MAPbBr单晶光致瞬态带隙重整化中的重要贡献,这在皮秒时间尺度上的不对称光谱演化和瞬态反射光谱位移中得到了证明。此外,我们利用时间分辨扫描电子显微镜对光激发进行了时空研究,并确定表面电荷载流子扩散和瞬态带隙重整化在时间上密切相关。这些发现凸显了重新评估当前光致带隙重整化理论的必要性,并为精确控制钙钛矿材料的光学和电子性质提供了一种新方法,从而能够设计和制造具有卓越效率和独特性能的高性能光电器件。

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