太赫兹辐射
光电子学
光学整流
材料科学
超短脉冲
静水压力
太赫兹光谱与技术
钻石
激光器
整改
砷化镓
照相混合
激发
光学
发射光谱
光抽运
受激发射
光谱学
远红外激光器
金刚石顶砧
光子学
碲化铅
Crystal(编程语言)
单晶
作者
Kai Zhang,Jiafeng Xie,Xinyao Wang,Zihao Huang,Donghan Jia,Hong Li,E.Y. Li,Huiyang Gou,Fuhai Su,Xinlong Xu,H. Schneider,Yirong Wu,Guangyou Fang,Tianwu Wang
标识
DOI:10.1002/lpor.202501885
摘要
ABSTRACT Coherent terahertz (THz) emission driven by ultrafast light–matter interactions is central to the development of advanced photonic and optoelectronic technologies. However, enhancing THz emission efficiency remains challenging due to the intrinsic dependence of generation mechanisms‐optical rectification (OR) and shift current (SC)‐on fixed material properties such as lattice symmetry and electronic structure. Here, we demonstrate hydrostatic pressure as an effective in situ control parameter for modulating THz emission in a two‐dimensional GaTe crystal. Using ultrafast THz emission spectroscopy in a diamond anvil cell (DAC), we observe a more than 13‐fold enhancement in THz output under compression. By tuning the excitation wavelength, we uncover a pressure‐induced transition from bound‐electron OR to free‐carrier SC, featuring a systematic forward time shift in THz waveform. First‐principles calculations reveal that the enhanced emission and time shift originate from pressure‐driven changes in resonance frequency and charge density. These results highlight hydrostatic pressure as a powerful means to tailor nonlinear light–matter interactions and optimize coherent THz emission in low‐dimensional systems.
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