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Superior carrier tuning in ultrathin superconducting materials by electric-field gating

journal contribution
posted on 2024-11-02, 21:55 authored by Peng Liu, Bin Lei, Xianhui Chen, Lan Wang, Xiaolin Wang
Two-dimensional (2D) superconductors with excellent crystallinity down to the monolayer have many unusual properties absent in the three-dimensional (3D) bulk, such as continuous phase transition, quantum metallic state and localization of electrons. Preparation of 2D superconductors has been challenging, owing to poor quality and extreme sensitivity to air exposure at ultralow thickness, but exfoliation methods have recently been developed to achieve perfectly crystallized ultrathin superconductors. The electric-double-layer transistor and ionic field-effect transistor are powerful electric-field gating strategies for modulating the carrier concentration of ultrathin materials, which can be up to 100 times those of conventional techniques limited by high-temperature phase separation and low voltage windows. Therefore, electric-field gating of 2D superconductors has become an essential way to find new high-temperature superconductors and investigate new quantum phenomena. This Technical Review summarizes recent advances in electric-field-gated superconductivity in various ultrathin superconducting materials, including iron-based superconductors, transition-metal dichalcogenides, honeycomb bilayer superconductors and cuprates. We also offer a perspective on open challenges and future development paths in this field.

Funding

ARC Centre of Excellence in Future Low Energy Electronics Technologies

Australian Research Council

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Electronic topological materials

Australian Research Council

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History

Related Materials

  1. 1.
    DOI - Is published in 10.1038/s42254-022-00438-2
  2. 2.
    ISSN - Is published in 25225820

Journal

Nature Reviews Physics

Volume

4

Issue

5

Start page

336

End page

352

Total pages

17

Publisher

Springer

Place published

United Kingdom

Language

English

Copyright

© Springer Nature Limited 2022

Former Identifier

2006119420

Esploro creation date

2023-03-02

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