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Get Free AccessTransition metal dichalcogenides are a family of quasi-two-dimensional materials that display a high technological potential due to their wide range of electronic ground states, e.g., from superconducting to semiconducting, depending on the chemical composition, crystal structure, or electrostatic doping. Here, we unveil that by tuning a single parameter, the hydrostatic pressure P, a cascade of electronic phase transitions can be induced in the few-layer transition metal dichalcogenide 1T'-WS2, including superconducting, topological, and anomalous Hall effect phases. Specifically, as P increases, we observe a dual phase transition: the suppression of superconductivity with the concomitant emergence of an anomalous Hall effect at P=1.15 GPa. Remarkably, upon further increasing the pressure above 1.6 GPa, we uncover a reentrant superconducting state that emerges out of a state still exhibiting an anomalous Hall effect. This superconducting state shows a marked increase in superconducting anisotropy with respect to the phase observed at ambient pressure, suggesting a different superconducting state with a distinct pairing symmetry. Via first-principles calculations, we demonstrate that the system concomitantly transitions into a strong topological phase with markedly different band orbital characters and Fermi surfaces contributing to the superconductivity. These findings position 1T'-WS2 as a unique, tunable superconductor, wherein superconductivity, anomalous transport, and band features can be tuned through the application of moderate pressures.
Md Shafayat Hossain, Qi Zhang, David Graf, Mikel Iraola, Tobias Müller, Sougata Mardanya, Yi-Hsin Tu, Zhuangchai Lai, Martina O. Soldini, Siyuan Li, Yao Yao, Yu-Xiao Jiang, Zi‐Jia Cheng, Maksim Litskevich, Brian Casas, Tyler A. Cochran, Xiàn Yáng, Byung‐Hoon Kim, Kenji Watanabe, Takashi Taniguchi, Sugata Chowdhury, Arun Bansil, Hua Zhang, Tay‐Rong Chang, Mark H. Fischer, Titus Neupert, Luis Balicas, M. Zahid Hasan (2025). Tunable superconductivity coexisting with the anomalous Hall effect in 1T'-WS2. , DOI: https://doi.org/10.48550/arxiv.2501.05980.
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Type
Preprint
Year
2025
Authors
28
Datasets
0
Total Files
0
Language
en
DOI
https://doi.org/10.48550/arxiv.2501.05980
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