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research article

Altermagnetic lifting of Kramers spin degeneracy

Krempasky, J.
•
Smejkal, L.
•
D'Souza, S. W.
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February 15, 2024
Nature

Lifted Kramers spin degeneracy (LKSD) has been among the central topics of condensed-matter physics since the dawn of the band theory of solids. It underpins established practical applications as well as current frontier research, ranging from magnetic-memory technology to topological quantum matter. Traditionally, LKSD has been considered to originate from two possible internal symmetry-breaking mechanisms. The first refers to time-reversal symmetry breaking by magnetization of ferromagnets and tends to be strong because of the non-relativistic exchange origin. The second applies to crystals with broken inversion symmetry and tends to be comparatively weaker, as it originates from the relativistic spin-orbit coupling (SOC). A recent theory work based on spin-symmetry classification has identified an unconventional magnetic phase, dubbed altermagnetic, that allows for LKSD without net magnetization and inversion-symmetry breaking. Here we provide the confirmation using photoemission spectroscopy and ab initio calculations. We identify two distinct unconventional mechanisms of LKSD generated by the altermagnetic phase of centrosymmetric MnTe with vanishing net magnetization. Our observation of the altermagnetic LKSD can have broad consequences in magnetism. It motivates exploration and exploitation of the unconventional nature of this magnetic phase in an extended family of materials, ranging from insulators and semiconductors to metals and superconductors(20,21), that have been either identified recently or perceived for many decades as conventional antiferromagnets.

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Type
research article
DOI
10.1038/s41586-023-06907-7
Web of Science ID

WOS:001163408400002

Author(s)
Krempasky, J.
Smejkal, L.
D'Souza, S. W.
Hajlaoui, M.
Springholz, G.
Uhlirova, K.
Alarab, F.
Constantinou, P. C.
Strocov, V.
Usanov, D.
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Date Issued

2024-02-15

Published in
Nature
Volume

626

Issue

7999

Start page

517

End page
Subjects

Scattering

•

Beamline

•

Adress

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SCI-SB-HD  
FunderGrant Number

Czech Science Foundation

19-28375X

Ministry of Education of the Czech Republic

CZ.02.01.01/00/22_008/0004594

LNSM-LNSpin

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Available on Infoscience
March 18, 2024
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/206419
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