Simulation of ultrafast electron diffraction intensity under coherent acoustic phonons

Author:

Zhang Yongzhao123ORCID,Li Jun1ORCID,Wang Wentao13ORCID,Tian Huanfang1ORCID,Gao Wenli14ORCID,Li Jianqi135ORCID,Sun Shuaishuai1ORCID,Yang Huaixin136ORCID

Affiliation:

1. Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences 1 , Beijing 100190, People's Republic of China

2. Institute of Quantum Materials and Physics, Henan Academy of Science 2 , Zhengzhou 450046, China People's Republic of China

3. School of Physical Sciences, University of Chinese Academy of Science 3 , Beijing 100190, People's Republic of China

4. School of Physics, Northwest University 4 , Xi'an 710069, People's Republic of China

5. Songshan Lake Materials Laboratory 5 , Dongguan, Guangdong 523808, People's Republic of China

6. Yangtze River Delta Physics Research Center Co., Ltd. 6 , Liyang, Jiangsu 213300, People's Republic of China

Abstract

Ultrafast electron diffraction has been proven to be a powerful tool for the study of coherent acoustic phonons owing to its high sensitivity to crystal structures. However, this sensitivity leads to complicated behavior of the diffraction intensity, which complicates the analysis process of phonons, especially higher harmonics. Here, we theoretically analyze the effects of photoinduced coherent transverse and longitudinal acoustic phonons on electron diffraction to provide a guide for the exploitation and modulation of coherent phonons. The simulation of the electron diffraction was performed in 30-nm films with different optical penetration depths based on the atomic displacements obtained by solving the wave equation. The simulation results exhibit a complex relationship between the frequencies of the phonons and diffraction signals, which highly depends on the laser penetration depth, sample thickness, and temporal stress distribution. In addition, an intensity decomposition method is proposed to account for the in-phase oscillation and high harmonics caused by inhomogeneous excitation. These results can provide new perspectives and insights for a comprehensive and accurate understanding of the lattice response under coherent phonons.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Guangdong Major Scientific Research Project

Youth Innovation Promotion Association of the Chinese Academy of Sciences

Scientific instrument developing Project of the Chinese Academy of Sciences

Strategic Priority Research Programof the Chinese Academy of Sciences

Beijing Municipal Science and Technology Major Project

IOP Hundred Talents Program

Postdoctoral Support Program of China

Publisher

AIP Publishing

Subject

Spectroscopy,Condensed Matter Physics,Instrumentation,Radiation

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