Theoretical Prediction of a Time-Reversal Broken Chiral Superconducting Phase Driven by Electronic Correlations in a SingleTiSe2Layer

Ganesh, R. ; Baskaran, G. ; van den Brink, Jeroen ; Efremov, Dmitry V. (2014) Theoretical Prediction of a Time-Reversal Broken Chiral Superconducting Phase Driven by Electronic Correlations in a SingleTiSe2Layer Physical Review Letters, 113 (17). ISSN 0031-9007

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Official URL: http://doi.org/10.1103/PhysRevLett.113.177001

Related URL: http://dx.doi.org/10.1103/PhysRevLett.113.177001

Abstract

Bulk TiSe2 is an intrinsically layered transition metal dichalcogenide hosting both superconducting and charge-density-wave ordering. Motivated by the recent progress in preparing two-dimensional transition metal dichalcogenides, we study these frustrated orderings in a single trilayer of TiSe2. Using a renormalization group approach, we find that electronic correlations can give rise to charge-density-wave order and two kinds of superconductivity. One possible superconducting state corresponds to unconventional sþ− pairing. The other is particularly exciting as it is chiral, breaking time-reversal symmetry. Its stability depends on the precise strength and screening of the electron-electron interactions in two-dimensional TiSe2.

Item Type:Article
Source:Copyright of this article belongs to American Physical Society.
ID Code:130166
Deposited On:02 Dec 2022 05:55
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