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Electron spin resonance insight into broadband absorption of the Cu3Bi(SeO3)2O2Br metamagnet

Zorko, A.; Gomilšek, M.; Pregelj, M.; Ozerov, M.; Zvyagin, S.A.; Ozarowski, A.; Tsurkan, V.; Loidl, A.; Zaharko, O.

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Authors

A. Zorko

M. Gomilšek

M. Pregelj

M. Ozerov

S.A. Zvyagin

A. Ozarowski

V. Tsurkan

A. Loidl

O. Zaharko



Abstract

Metamagnets, which exhibit a transition from a low-magnetization to a high-magnetization state induced by the applied magnetic field, have recently been highlighted as promising materials for controllable broadband absorption. Here we show results of a multifrequency electron spin resonance (ESR) investigation of the Cu3Bi(SeO3)2O2Br planar metamagnet on the kagome lattice. Its mixed antiferromagnetic/ferromagnetic phase is stabilized in a finite range of applied fields around 0.8 T at low temperatures and is characterized by enhanced microwave absorption. The absorption signal is non-resonant and its boundaries correspond to two critical fields that determine the mixed phase. With decreasing temperature these increase like the sublattice magnetization of the antiferromagnetic phase and show no frequency dependence between 100 and 480 GHz. On the contrary, we find that the critical fields depend on the magnetic-field sweeping direction. In particular, the higher critical field, which corresponds to the transition from the mixed to the ferromagnetic phase, shows a pronounced hysteresis effect, while such a hysteresis is absent for the lower critical field. The observed hysteresis is enhanced at lower temperatures, which suggests that thermal fluctuations play an important role in destabilizing the highly absorbing mixed phase.

Citation

Zorko, A., Gomilšek, M., Pregelj, M., Ozerov, M., Zvyagin, S., Ozarowski, A., …Zaharko, O. (2016). Electron spin resonance insight into broadband absorption of the Cu3Bi(SeO3)2O2Br metamagnet. AIP Advances, 6(5), Article 056210. https://doi.org/10.1063/1.4943534

Journal Article Type Article
Acceptance Date Dec 21, 2015
Online Publication Date Mar 3, 2016
Publication Date Mar 3, 2016
Deposit Date May 11, 2018
Publicly Available Date May 22, 2018
Journal AIP Advances
Publisher American Institute of Physics
Peer Reviewed Peer Reviewed
Volume 6
Issue 5
Article Number 056210
DOI https://doi.org/10.1063/1.4943534

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