Moyu Kato
;
Yasuo Narumi
;
Katsuhiro Morita
;
Yoshitaka Matsushita
(National Institute for Materials Science
)
;
Shuhei Fukuoka
;
Satoshi Yamashita
;
Yasuhiro Nakazawa
;
Migaku Oda
;
Hiroaki Hayashi
(National Institute for Materials Science
)
;
Kazunari Yamaura
(National Institute for Materials Science
)
;
Masayuki Hagiwara
;
Hiroyuki K. Yoshida
Description:
(abstract)The emergence of nontrivial quantum states from competing interactions is a central issue in quantum magnetism. In particular, for the realization of the quantum spin-liquid state, extensive studies have been conducted on frustrated systems, such as kagome antiferromagnets and Kitaev magnets. Novel quantum states in magnetic fields have remained elusive despite the prediction of rich physics. This can be attributed to material scarcity and the difficulty of precise measurements under ultra-high magnetic fields. In this study, we discover the new kapellasite-type compound InCu3(OH)6Cl3, whose exchange interactions are in appropriate energy scale to comprehensively elucidate the magnetic properties of the frustrated S = 1/2 kagome antiferromagnet. The one-third magnetization plateau was clearly observed. Moreover, the large temperature-linear term in the heat capacity was observed in the magnetic fields, indicating the excitation of gapless quasiparticles in the vicinity of the plateau. These discoveries shed light on the critical behaviors between quantum spin-liquid and -solid in kagome antiferromagnets under high magnetic fields.
Rights:
Open Access
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Keyword: Magnetic properties, Quantum fluids and solids
Date published: 2024-12-28
Publisher: Springer Science and Business Media LLC
Journal:
Funding:
Manuscript type: Publisher's version (Version of record)
MDR DOI:
First published URL: https://doi.org/10.1038/s42005-024-01922-0
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Other identifier(s):
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Updated at: 2025-01-07 08:30:56 +0900
Published on MDR: 2025-01-07 08:30:56 +0900
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