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成像黑磷中压力驱动相变的超快动力学及反常相干声子软化

Imaging Ultrafast Dynamics of Pressure-Driven Phase Transitions in Black Phosphorus and Anomalous Coherent Phonon Softening.

作者信息

Wu Simin, Chu Weibin, Lu Yang, Ji Minbiao

机构信息

State Key Laboratory of Surface Physics and Department of Physics, Key Laboratory of Micro and Nano Photonic Structures (Ministry of Education), Shanghai Key Laboratory of Metasurfaces for Light Manipulation, Fudan University, Shanghai 200433, China.

Key Laboratory of Computational Physical Science (MOE) and Institute of Computational Physical Science, Fudan University, Shanghai 200433, China.

出版信息

Nano Lett. 2024 Jan 10;24(1):424-432. doi: 10.1021/acs.nanolett.3c04218. Epub 2023 Dec 28.

Abstract

Applying high pressure to effectively modulate the electronic and lattice structures of materials could unravel various physical properties associated with phase transitions. In this work, high-pressure-compatible femtosecond pump-probe microscopy was constructed to study the pressure-dependent ultrafast dynamics in black phosphorus (BP) thin films. We observed pressure-driven evolution of the electronic topological transition and three structural phases as the pressure reached ∼22 GPa, which could be clearly differentiated in the transient absorption images containing spatially resolved ultrafast carrier and coherent phonon dynamics. Surprisingly, an anomalous coherent acoustic phonon mode with pressure softening behavior was observed within the range of ∼3-8 GPa, showing distinct laser power and time dependences. Density functional theory calculations show that this mode, identified as the shear mode along the armchair orientation, gains significant electron-phonon coupling strength from out-of-plane compression that leads to decreased phonon frequency. Our results provide insights into the structure evolution of BP with pressure and hold potential for applications in microelectromechanical devices.

摘要

施加高压以有效调节材料的电子和晶格结构,可以揭示与相变相关的各种物理性质。在这项工作中,构建了与高压兼容的飞秒泵浦-探测显微镜,以研究黑磷(BP)薄膜中与压力相关的超快动力学。我们观察到随着压力达到约22 GPa,电子拓扑转变和三个结构相的压力驱动演化,这在包含空间分辨超快载流子和相干声子动力学的瞬态吸收图像中可以清楚地区分。令人惊讶的是,在约3-8 GPa范围内观察到一种具有压力软化行为的异常相干声学声子模式,表现出明显的激光功率和时间依赖性。密度泛函理论计算表明,这种模式被确定为沿扶手椅方向的剪切模式,从面外压缩中获得了显著的电子-声子耦合强度,导致声子频率降低。我们的结果为BP随压力的结构演化提供了见解,并在微机电装置中具有应用潜力。

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