Nhat Quyen Nguyen, Tzeng Wen-Yen, Hsu Chih-En, Lin I-An, Chen Wan-Hsin, Jia Hao-Hsiang, Wang Sheng-Chiao, Liu Cheng-En, Chen Yu-Sheng, Chen Wei-Liang, Chou Ta-Lei, Wang I-Ta, Kuo Chia-Nung, Lin Chun-Liang, Wu Chien-Te, Lin Ping-Hui, Weng Shih-Chang, Cheng Cheng-Maw, Kuo Chang-Yang, Tu Chien-Ming, Chu Ming-Wen, Chang Yu-Ming, Lue Chin Shan, Hsueh Hung-Chung, Luo Chih-Wei
Department of Electrophysics, National Yang Ming Chiao Tung University, Hsinchu, 30010, Taiwan.
Department of Electronic Engineering, National Formosa University, Yunlin, 632, Taiwan.
Nat Commun. 2024 Mar 16;15(1):2386. doi: 10.1038/s41467-024-46615-y.
Charge density waves (CDWs) involved with electronic and phononic subsystems simultaneously are a common quantum state in solid-state physics, especially in low-dimensional materials. However, CDW phase dynamics in various dimensions are yet to be studied, and their phase transition mechanism is currently moot. Here we show that using the distinct temperature evolution of orientation-dependent ultrafast electron and phonon dynamics, different dimensional CDW phases are verified in CuTe. When the temperature decreases, the shrinking of c-axis length accompanied with the appearance of interchain and interlayer interactions causes the quantum fluctuations (QF) of the CDW phase until 220 K. At T < 220 K, the CDWs on the different ab-planes are finally locked with each other in anti-phase to form a CDW phase along the c-axis. This study shows the dimension evolution of CDW phases in one CDW system and their stabilized mechanisms in different temperature regimes.
同时涉及电子和声子子系统的电荷密度波(CDW)是固态物理学中一种常见的量子态,尤其是在低维材料中。然而,不同维度的CDW相动力学尚未得到研究,其相变机制目前尚无定论。在此,我们表明,利用取向相关的超快电子和声子动力学的不同温度演化,在碲化铜(CuTe)中验证了不同维度的CDW相。当温度降低时,c轴长度的收缩伴随着链间和层间相互作用的出现,导致CDW相的量子涨落(QF)直至220K。在T < 220K时,不同ab平面上的CDW最终反相锁定,沿c轴形成一个CDW相。本研究展示了一个CDW系统中CDW相的维度演化及其在不同温度区间的稳定机制。