4.8 Article

Gate-Induced Interfacial Superconductivity in 1T-SnSe2

Journal

NANO LETTERS
Volume 18, Issue 2, Pages 1410-1415

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.7b05157

Keywords

SnSe2; metal dichalcogenides; electric-double-layer transistor; interfacial superconductivity

Funding

  1. National Key Basic Research Program of China [2015CB921600, 2013CBA01603]
  2. National Natural Science Foundation of China [61625402, 11374142, 61574076, 11474147]
  3. Fundamental Research Funds for the Central Universities
  4. Collaborative Innovation Center of Advanced Microstructures
  5. Department of Energy, Office of Basic Energy Sciences, Division of Materials Sciences and Engineering [DE-AC02-76SF00515]

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Layered metal chalcogenide materials provide a versatile platform to investigate emergent phenomena and two-dimensional (2D) superconductivity at/near the atomically thin limit. In particular, gate-induced interfacial superconductivity realized by the use of an electric-double-layer transistor (EDLT) has greatly extended the capability to electrically induce superconductivity in oxides, nitrides, and transition metal chalcogenides and enable one to explore new physics, such as the Ising pairing mechanism. Exploiting gate induced superconductivity in various materials can provide us with additional platforms to understand emergent interfacial superconductivity. Here, we report the discovery of gate induced 2D superconductivity in layered 1T-SnSe2, a typical member of the main-group metal dichalcogenide (MDC) family, using an EDLT gating geometry. A superconducting transition temperature T-c approximate to 3.9 K was demonstrated at the EDL interface. The 2D nature of the superconductivity therein was further confirmed based on (1) a 2D Tinkham description of the angle dependent upper critical field B-c2 (2) the existence of a quantum creep state as well as a large ratio of the coherence length to the thickness of superconductivity. Interestingly, the in-plane B-c2 approaching zero temperature was found to be 2-3 times higher than the Pauli limit, which might be related to an electric field-modulated spin-orbit interaction. Such results provide a new perspective to expand the material matrix available for gate-induced 2D superconductivity and the fundamental understanding of interfacial superconductivity.

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