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Two-dimensional superconductivity in new niobium dichalcogenides-based bulk superlattices

Superconductivity 2024-11-20 v1 Materials Science

Abstract

Transition metal dichalcogenides exhibit many unexpected properties including two-dimensional (2D) superconductivity as the interlayer coupling being weakened upon either layer-number reduction or chemical intercalation. Here we report the realization of 2D superconductivity in the newly-synthesized niobium dichalcogenides-based bulk superlattices Ba0.75_{0.75}ClNbS2_{2} and Ba0.75_{0.75}ClNbSe2_{2}, which consists of the alternating stacking of monolayer HH-NbS2_{2} (or HH-NbSe2_{2}) and monolayer inorganic insulator spacer Ba0.75_{0.75}Cl. Magnetic susceptibility and resistivity measurements show that both superlattices belong to type-II superconductor with TcT_{c} of 1 K and 1.25 K, respectively. Intrinsic 2D superconductivity is confirmed for both compounds below a Berezinskii-Kosterlitz-Thouless transition and a large anisotropy of the upper critical field. Furthermore, the upper critical field along abab plane (Hc2abH_{c2}^{\parallel ab}) exceeds the Pauli limit (μ0Hp\mu_{0}H_{p}) in Ba0.75_{0.75}ClNbSe2_{2}, highlighting the influence of spin-orbit interactions. Our results establish a generic method for realizing the 2D superconducting properties in bulk superlattice materials.

Keywords

Cite

@article{arxiv.2411.12231,
  title  = {Two-dimensional superconductivity in new niobium dichalcogenides-based bulk superlattices},
  author = {Kaibao Fan and Mengzhu Shi and Houpu Li and Ziji Xiang and Xianhui Chen},
  journal= {arXiv preprint arXiv:2411.12231},
  year   = {2024}
}