Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/111423
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Title: Ultrahigh supercurrent density in a two-dimensional topological material
Authors: Zhang, Q
Hossain, S
Casas, B
Zheng, W
Cheng, ZJ
Lai, Z 
Tu, YH
Chang, G
Yao, Y
Li, S
Jiang, YX
Mardanya, S
Chang, TR
You, JY
Feng, YP
Cheng, G
Yin, JX
Shumiya, N
Cochran, TA
Yang, XP
Litskevich, M
Yao, N
Watanabe, K
Taniguchi, T
Zhang, H
Balicas, L
Hasan, MZ
Issue Date: Jul-2023
Source: Physical review materials, July 2023, v. 7, no. 7, L071801
Abstract: Ongoing advances in superconductors continue to revolutionize technology thanks to the increasingly versatile and robust availability of lossless supercurrents. In particular, high supercurrent density can lead to more efficient and compact power transmission lines, high-field magnets, as well as high-performance nanoscale radiation detectors and superconducting spintronics. Here, we report the discovery of an unprecedentedly high superconducting critical current density (17MA/cm2 at 0 T and 7MA/cm2 at 8 T) in 1T′-WS2, exceeding those of all reported two-dimensional superconductors to date. 1T′-WS2 features a strongly anisotropic (both in- and out-of-plane) superconducting state that violates the Pauli paramagnetic limit signaling the presence of unconventional superconductivity. Spectroscopic imaging of the vortices further substantiates the anisotropic nature of the superconducting state. More intriguingly, the normal state of 1T′-WS2 carries topological properties. The band structure obtained via angle-resolved photoemission spectroscopy and first-principles calculations points to a Z2 topological invariant. The concomitance of topology and superconductivity in 1T′-WS2 establishes it as a topological superconductor candidate, which is promising for the development of quantum computing technology.
Publisher: American Physical Society
Journal: Physical review materials 
EISSN: 2475-9953
DOI: 10.1103/PhysRevMaterials.7.L071801
Rights: ©2023 American Physical Society
The following publication Zhang, Q., Hossain, M. S., Casas, B., Zheng, W., Cheng, Z.-J., Lai, Z., Tu, Y.-H., Chang, G., Yao, Y., Li, S., Jiang, Y.-X., Mardanya, S., Chang, T.-R., You, J.-Y., Feng, Y.-P., Cheng, G., Yin, J.-X., Shumiya, N., Cochran, T. A., . . . Hasan, M. Z. (2023). Ultrahigh supercurrent density in a two-dimensional topological material. Physical Review Materials, 7(7), L071801 is available at https://doi.org/10.1103/PhysRevMaterials.7.L071801.
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