Unconventional gate-induced superconductivity in transition-metal dichalcogenides
Thibault Sohier, Marco Gibertini, Ivar Martin, Alberto F. Morpurgo
DOI 10.1103/PhysRevResearch.7.013290 · Physical Review Research
Active bibliographic source — not scientific approval
Bibliographic access preserves source history; it does not approve extracted materials or validate reported claims. Review warnings on each occurrence separately.
Abstract
Superconductivity in few-layer semiconducting transition-metal dichalcogenides (TMDs) can be induced by field-effect doping through ionic-liquid gating. While several experimental observations have been collected over the years, a fully consistent theoretical picture is still missing. Here we develop a realistic framework that combines the predictive power of first-principles simulations with the versatility and insight of Bardeen-Cooper-Schrieffer gap equations to rationalize such experiments. The multivalley nature of semiconducting TMDs is taken into account, together with the doping- and momentum-dependent electron-phonon and Coulomb interactions. Consistently with experiments, we find that superconductivity occurs when the electron density is large enough that the Q valleys get occupied, as a result of a large enhancement of electron-phonon interactions. Despite being phonon driven, the superconducting state is predicted to be sensitive to Coulomb interactions, which can lead to the appearance of a relative sign difference between valleys and thus to a s+− character. We discuss qualitatively how such scenario may account for many of the observed physical phenomena for which no microscopic explanation has been found so far, including in particular the presence of a large subgap density of states, and the sample-dependent dome-shaped dependence of Tc on accumulated electron density. Our results provide a comprehensive analysis of gate-induced superconductivity in semiconducting TMDs, and introduce an approach that will likely be valuable for other multivalley electronic systems, in which superconductivity occurs at relatively low electron density.
Source-reported materials — not catalogue approval
| Formula | Reported Tc (K) | Pressure (GPa) | Type |
|---|---|---|---|
| MoS2 Archive — visibility unverified Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula. | 11 | Pressure not reported | unknown |
| WS2 Archive — visibility unverified Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula. | — | Pressure not reported | unknown |
| MoSe2 Archive — visibility unverified Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula. | — | Pressure not reported | unknown |
| WSe2 Archive — visibility unverified Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula. | — | Pressure not reported | unknown |
Similar papers
Unconventional superconductivity and anomalous response in hole-doped transition metal dichalcogenides
similarity 0.96Evan Sosenko et al.
Source status unknown — claims are unverified
Quantum criticality and superconductivity in twisted transition metal dichalcogenides
similarity 0.95A. V. Chubukov & C. M. Varma
Source status unknown — claims are unverified
Enhancement of superconducting transition temperature and exotic stoichiometries in the Lu−S system under high pressure
similarity 0.95Juefei Wu et al.
Source status unknown — claims are unverified
Superconductivity above 12 K with possible multiband features in CsCl-type PbS
similarity 0.95He Zhang et al.
Source status unknown — claims are unverified
Platform for nodal topological superconductors in monolayer molybdenum dichalcogenides
similarity 0.95Lin Wang et al.
Source status unknown — claims are unverified
Topological superconductivity in Dirac honeycomb systems
similarity 0.95Kyungmin Lee et al.
Source status unknown — claims are unverified