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穿越双阱势能面:XTe(X = Mo,W)中的光致层内和层间并发结构转变

Traversing Double-Well Potential Energy Surfaces: Photoinduced Concurrent Intralayer and Interlayer Structural Transitions in XTe (X = Mo, W).

作者信息

Qi Yingpeng, Guan Mengxue, Zahn Daniela, Vasileiadis Thomas, Seiler Hélène, Windsor Yoav William, Zhao Hui, Meng Sheng, Ernstorfer Ralph

机构信息

Fritz-Haber-Institut der Max-Planck-Gesellschaft, Faradayweg 4-6, Berlin 14195, Germany.

Center for Ultrafast Science and Technology, School of Physics and Astronomy, Shanghai Jiao Tong University, Shanghai 200240, China.

出版信息

ACS Nano. 2022 Jul 26;16(7):11124-11135. doi: 10.1021/acsnano.2c03809. Epub 2022 Jul 6.

Abstract

The microscopic arrangement of atoms and molecules is the determining factor in how materials behave and perform; , the structure determines the property, a traditional paradigm in materials science. Photoexcitation-driven manipulation of the crystal structure and associated electronic properties in quantum materials provides opportunities for the exploration of exotic physics and practical applications; however, a generalized mechanism for such symmetry engineering is absent. Here, by ultrafast electron diffraction, structure factor calculation, and TDDFT-MD simulations, we report the photoinduced concurrent intralayer and interlayer structural transitions in the Td and 1T' phases of XTe (X = Mo, W). We discuss the modification of multiple quantum electronic states associated with the intralayer and interlayer structural transitions, such as the topological band inversion and the higher-order topological state. The twin structures and the stacking faults in XTe are also identified by ultrafast structural responses. The comprehensive study of the ultrafast structural response in XTe suggests the traversal of all double-well potential energy surfaces (DWPES) by laser excitation, which is expected to be an intrinsic mechanism in the field of photoexcitation-driven global/local symmetry engineering and also a critical ingredient inducing the exotic properties in the non-equilibrium state in a large number of material systems.

摘要

原子和分子的微观排列是决定材料行为和性能的因素;也就是说,结构决定性能,这是材料科学中的一个传统范式。光激发驱动的量子材料晶体结构及相关电子性质的操控为探索奇异物理现象和实际应用提供了机会;然而,目前尚不存在用于这种对称性工程的通用机制。在此,我们通过超快电子衍射、结构因子计算和含时密度泛函理论分子动力学模拟,报道了XTe(X = Mo、W)的Td相和1T'相中光诱导的层内和层间同时发生的结构转变。我们讨论了与层内和层间结构转变相关的多个量子电子态的变化,例如拓扑能带反转和高阶拓扑态。超快结构响应还识别出了XTe中的孪晶结构和堆垛层错。对XTe超快结构响应的全面研究表明,激光激发可使所有双阱势能面(DWPES)遍历,这有望成为光激发驱动的全局/局部对称性工程领域的一种内在机制,也是在大量材料系统中诱导非平衡态奇异性质的关键因素。

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