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Weyl nodal ring states and Landau quantization with very large magnetoresistance in square-net magnet EuGa4.

Authors :
Lei, Shiming
Allen, Kevin
Huang, Jianwei
Moya, Jaime M.
Wu, Tsz Chun
Casas, Brian
Zhang, Yichen
Oh, Ji Seop
Hashimoto, Makoto
Lu, Donghui
Denlinger, Jonathan
Jozwiak, Chris
Bostwick, Aaron
Rotenberg, Eli
Balicas, Luis
Birgeneau, Robert
Foster, Matthew S.
Yi, Ming
Sun, Yan
Morosan, Emilia
Source :
Nature Communications; 9/19/2023, Vol. 14 Issue 1, p1-9, 9p
Publication Year :
2023

Abstract

Magnetic topological semimetals allow for an effective control of the topological electronic states by tuning the spin configuration. Among them, Weyl nodal line semimetals are thought to have the greatest tunability, yet they are the least studied experimentally due to the scarcity of material candidates. Here, using a combination of angle-resolved photoemission spectroscopy and quantum oscillation measurements, together with density functional theory calculations, we identify the square-net compound EuGa<subscript>4</subscript> as a magnetic Weyl nodal ring semimetal, in which the line nodes form closed rings near the Fermi level. The Weyl nodal ring states show distinct Landau quantization with clear spin splitting upon application of a magnetic field. At 2 K in a field of 14 T, the transverse magnetoresistance of EuGa<subscript>4</subscript> exceeds 200,000%, which is more than two orders of magnitude larger than that of other known magnetic topological semimetals. Our theoretical model suggests that the non-saturating magnetoresistance up to 40 T arises as a consequence of the nodal ring state. The tunability of electronic properties is a central goal of research into topological semimetals. Here, the authors report Weyl nodal ring states in the magnetic semimetal EuGa<subscript>4</subscript> and link the nodal ring state to the observed large non-saturating magnetoresistance. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20411723
Volume :
14
Issue :
1
Database :
Complementary Index
Journal :
Nature Communications
Publication Type :
Academic Journal
Accession number :
172019833
Full Text :
https://doi.org/10.1038/s41467-023-40767-z