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Cited 127 time in webofscience Cited 130 time in scopus
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Higgs mode and its decay in a two-dimensional antiferromagnet SCIE SCOPUS

Title
Higgs mode and its decay in a two-dimensional antiferromagnet
Authors
Jain, A.Krautloher, M.Porras, J.Ryu, G.H.Chen, D.P.Abernathy, D.L.Park, J.T.Ivanov, A.Chaloupka, J.Khaliullin, G.Keimer, B.Kim, B.J.
Date Issued
2017-07
Publisher
NATURE PUBLISHING GROUP
Abstract
Condensed-matter analogues of the Higgs boson in particle physics allow insights into its behaviour in different symmetries and dimensionalities. Evidence for the Higgs mode has been reported in a number of different settings, including ultracold atomic gases, disordered superconductors, and dimerized quantum magnets. However, decay processes of the Higgs mode (which are eminently important in particle physics) have not yet been studied in condensed matter due to the lack of a suitable material system coupled to a direct experimental probe. A quantitative understanding of these processes is particularly important for low-dimensional systems, where the Higgs mode decays rapidly and has remained elusive to most experimental probes. Here, we discover and study the Higgs mode in a two-dimensional antiferromagnet using spin-polarized inelastic neutron scattering. Our spin-wave spectra of Ca 2 RuO 4 directly reveal a well-defined, dispersive Higgs mode, which quickly decays into transverse Goldstone modes at the antiferromagnetic ordering wavevector. Through a complete mapping of the transverse modes in the reciprocal space, we uniquely specify the minimal model Hamiltonian and describe the decay process. We thus establish a novel condensed-matter platform for research on the dynamics of the Higgs mode. ? 2017 Macmillan Publishers Limited, part of Springer Nature. All rights reserved.
URI
https://oasis.postech.ac.kr/handle/2014.oak/92075
DOI
10.1038/nphys4077
ISSN
1745-2473
Article Type
Article
Citation
Nature Physics, vol. 13, no. 7, page. 633 - 637, 2017-07
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