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Updated: Mar 22, 2026

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Published on: January 19, 2018
Ultrafast One-Dimensional Peierls-Distortion Dynamics in 1T^{'}-ReS_{2} Revealed by 4D Electron Microscopy
Jingchao Liu1, Shaozheng Ji1, Lifu Zhang2
1Nankai University, Ultrafast Electron Microscopy Laboratory, The MOE Key Laboratory of Weak-Light Nonlinear Photonics, School of Physics, Tianjin 300071, China.
Abstract:
Rhenium disulfide (ReS_{2}), a prototypical 2D semiconductor with an anisotropic 1T^{'} structure due to the pronounced Peierls distortion, has demonstrated great potential for polarization-dependent optoelectronics and photonics. Here, we report an ultrafast phase transition occurring within 1 ps, accompanied by a one-dimensional Peierls-distortion relaxation in 1T^{'}-ReS_{2} revealed with combined 4D electron microscopy and time-dependent density functional theory calculations. Upon femtosecond laser pulse excitation, the Re-Re dimerization morphology rapidly transforms from a diamond cluster to zigzag chains and persists for several nanoseconds. This ultrafast Peierls-distortion relaxation is further verified by transient changes in optical anisotropy via polarization-dependent transient absorption spectroscopy. Time-dependent density functional theory calculations attribute this novel phase transition to strong correlation between Peierls distortion and impulsive photoexcited carrier doping, predicting a transient band-gap collapse. This Letter opens up an exciting avenue for ultrafast control of Peierls-distortion-induced anisotropy and the metal-insulator transition in 1T^{'}-ReS_{2}.
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