English

Multi-Valley Superconductivity In Ion-Gated MoS2 Layers

Superconductivity 2018-09-19 v2 Mesoscale and Nanoscale Physics Materials Science

Abstract

Layers of transition metal dichalcogenides (TMDs) combine the enhanced effects of correlations associated with the two-dimensional limit with electrostatic control over their phase transitions by means of an electric field. Several semiconducting TMDs, such as MoS2_2, develop superconductivity (SC) at their surface when doped with an electrostatic field, but the mechanism is still debated. It is often assumed that Cooper pairs reside only in the two electron pockets at the K/K' points of the Brillouin Zone. However, experimental and theoretical results suggest that a multi-valley Fermi surface (FS) is associated with the SC state, involving 6 electron pockets at the Q/Q' points. Here, we perform low-temperature transport measurements in ion-gated MoS2_2 flakes. We show that a fully multi-valley FS is associated with the SC onset. The Q/Q' valleys fill for doping21013\gtrsim2\cdot10^{13}cm2^{-2}, and the SC transition does not appear until the Fermi level crosses both spin-orbit split sub-bands Q1_1 and Q2_2. The SC state is associated with the FS connectivity and promoted by a Lifshitz transition due to the simultaneous population of multiple electron pockets. This FS topology will serve as a guideline in the quest for new superconductors.

Keywords

Cite

@article{arxiv.1802.06675,
  title  = {Multi-Valley Superconductivity In Ion-Gated MoS2 Layers},
  author = {Erik Piatti and Domenico De Fazio and Dario Daghero and Srinivasa R. Tamalampudi and Duhee Yoon and Andrea C. Ferrari and Renato S. Gonnelli},
  journal= {arXiv preprint arXiv:1802.06675},
  year   = {2018}
}

Comments

12 pages, 7 figures

R2 v1 2026-06-23T00:26:29.826Z