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Yoo, Jung-Woo
Nano Spin Transport Lab.
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Optical detection of bond-dependent and frustrated spin in the two-dimensional cobalt-based honeycomb antiferromagnet Cu3Co2SbO6

Author(s)
Kang, BaekjuneChoi, UksamJung, Taek SunNoh, SeunghyeonKim, Gye-HyeonSeo, UihyeonPark, MijuChoi, Jin-HyunKim, Min JaeJi, GwangcheolSong, SehwanJo, HyesungHong, SeokjoDuong, Nguyen XuanSamanta, SubhasisKim, Heung-SikKim, Tae HeonYang, YongsooPark, SungkyunOk, Jong MokYoo, Jung-WooKim, Jae HoonSohn, Chang Hee
Issued Date
2025-02
DOI
10.1038/s41467-025-56652-w
URI
https://scholarworks.unist.ac.kr/handle/201301/87433
Citation
NATURE COMMUNICATIONS, v.16, no.1, pp.1323
Abstract
Two-dimensional honeycomb antiferromagnets are promising materials class for realizing Kitaev quantum spin liquids. The signature of these materials includes anisotropic bond-dependent magnetic responses and persistent fluctuations in paramagnetic regime. Here, we propose Cu3Co2SbO6 heterostructures as an intriguing candidate, wherein bond-dependent and frustrated spins interact with optical excitons. First-principles spin Hamiltonian calculations and in-plane anisotropic critical fields suggest strong frustration and dominant Kitaev exchange interactions. Optical spectroscopy reveals exciton coupled to frustrated magnetism, enabling optical detection of spin states. Spin-exciton coupling displays anisotropic responses to light polarization along the bond-parallel and the bond-perpendicular directions, highlighting Kitaev interactions and persistent short-range spin correlations above twice the N & eacute;el temperatures. The robustness of short-range spin fluctuations under magnetic fields underscores the stability of the spin-fluctuation region. Our results establish Cu3Co2SbO6 as an attractive candidate for exploring quantum spin liquid, where the spin Hamiltonian and quasiparticle excitations can be probed and potentially controlled by light.
Publisher
NATURE PORTFOLIO
ISSN
2041-1723
Keyword
ANYONSMAJORANA FERMIONSABSORPTION EDGEQUANTUM

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