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Coherent Lattice Wobbling and Dynamic Breaking of Friedel's Law Observed by Ultrafast Electron Diffraction

ORAL

Abstract

The inspection of Friedel's law in ultrafast electron diffraction (UED) is important to gain a comprehensive understanding of material atomic structure and its dynamic response. Here, monoclinic gallium telluride (GaTe), as a low-symmetry, layered crystal in contrast to many other 2D materials, is investigated by mega-electron-volt UED. Strong out-of-phase oscillations of Bragg peak intensities are observed for Friedel pairs, which has dynamically violated the Friedel's law. As evidenced by the preserved mirror symmetry and supported by both kinematic and dynamic scattering simulations, the intensity oscillations are provoked by the lowest-order longitudinal acoustic breathing phonon. Our results provide a generalized understanding of Friedel's law in UED, and demonstrate that by designed misalignment of surface normal and primitive lattice vectors, coherent lattice wobbling and effective shear strain can be generated in crystal films by laser pulse excitation, which is otherwise hard to achieve and can be further utilized to dynamically tune and switch material properties.

Presenters

  • Shengxi Huang

    Pennsylvania State University, Penn State University, The Pennsylvania State University

Authors

  • Qingkai Qian

    Pennsylvania State University, Penn State University

  • Xiaozhe Shen

    SLAC National Laboratory

  • Duan Luo

    SLAC National Accelerator Laboratory, SLAC National Laboratory

  • Xijie Wang

    SLAC National Laboratory

  • Shengxi Huang

    Pennsylvania State University, Penn State University, The Pennsylvania State University