论文标题

1T-TAS2的相关电荷密度波状态的滞后电子相变

Hysteretic Electronic Phase Transitions in Correlated Charge-Density-Wave State of 1T-TaS2

论文作者

Yanyan, Geng, Le, Lei, Haoyu, Dong, Jianfeng, Guo, Shuo, Mi, Yan, Li, Li, Huang, Fei, Pang, Rui, Xu, Weichang, Zhou, Zheng, Liu, Wei, Ji, Zhihai, Cheng

论文摘要

最近,许多奇异的电子状态,例如量子自旋液体(QSL)和超导性(SC),通过控制其复杂的相关电荷密度波(CDW)状态,已在分层过渡金属二甲核酸1T-TAS2中广泛发现和引入。然而,很少有研究基于对温度依赖性电子相互作用之间的微妙相互作用的深入讨论,因此很少研究其滞后电子相变。在这里,我们通过变温扫描隧道显微镜(VT-STM)报道了1T-TAS2的磁滞温度范围(VT-STM)的一系列空间电子相变。通过变暖/冷却过程详细研究了相应的CDW/Triclinic CDW(CCDW/TCDW)阶段中各种新型电子状态(CCDW/TCDW)阶段中各种新型电子状态的出现,进化,共存和分离。这些新型的新兴电子状态可以归因于层间相互作用的微妙温度依赖性竞争和/或合作1T-TAS2的层间相互作用,内部电子 - 电子相关性以及电子波(E-PH)耦合。我们的结果不仅提供了一种新颖的见解,可以理解相关CDW状态的滞后电子相变,而且还可以通过准确有效地控制相关材料中的各种相互作用来实现更多异国情调的量子状态。

Recently, many exotic electronic states, such as quantum spin liquid (QSL) and superconductivity (SC), have been extensively discovered and introduced in layered transition metal dichalcogenides 1T-TaS2 by controlling their complex correlated charge-density-wave (CDW) states. However, few studies have focused on its hysteretic electronic phase transitions based on the in-depth discussion of the delicate interplay among temperature-dependent electronic interactions. Here, we reported a sequence of spatial electronic phase transitions in the hysteresis temperature range of 1T-TaS2 via variable-temperature scanning tunneling microscopy (VT-STM). The emergence, evolution, coexistence, and separation of diverse novel electronic states within the commensurate CDW/triclinic CDW (CCDW/TCDW) phase are investigated in detail through the warming/cooling process. These novel emergent electronic states can be attributed to the delicate temperature-dependent competition and/or cooperation of interlayer interactions, intralayer electron-electron correlation, and electron-phonon (e-ph) coupling of 1T-TaS2. Our results not only provide a novel insight to understand the hysteretic electronic phase transitions of correlated CDW state, but also pave a way to realize more exotic quantum states by accurately and effectively controlling various interactions in correlated materials.

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