Ground state magnetic structure and magnetic field effects in the layered honeycomb antiferromagnet YbOCl

Author:

Zhang Zheng1ORCID,Cai Yanzhen2ORCID,Jiao Jinlong3,Kang Jing1,Yu Dehong4ORCID,Roessli Bertrand5,Zhang Anmin2,Ji Jianting1ORCID,Jin Feng1,Ma Jie3ORCID,Zhang Qingming12

Affiliation:

1. Institute of Physics, Chinese Academy of Sciences

2. Lanzhou University

3. Shanghai Jiao Tong University

4. Australian Nuclear Science and Technology Organisation

5. Paul Scherrer Institut

Abstract

YbOCl is a representative member of the van der Waals layered honeycomb rare-earth chalcohalide RChX (R = rare earth; Ch = O, S, Se, and Te; and X = F, Cl, Br, and I) family reported recently. Its spin ground state remains to be explored experimentally. We grew high-quality single crystals of YbOCl and conducted comprehensive thermodynamic, elastic, and inelastic neutron scattering experiments down to 50 mK. The experiments reveal an antiferromagnetic phase below 1.3 K which is identified as a spin ground state with an intralayer ferromagnetic and interlayer antiferromagnetic ordering. By applying sophisticated numerical techniques to a honeycomb (nearest-neighbor)–triangle (next-nearest-neighbor) model Hamiltonian which accurately describes the highly anisotropic spin system, we are able to simulate the experiments well and determine the diagonal and off-diagonal spin-exchange interactions. The simulations give an antiferromagnetic Kitaev term comparable to the Heisenberg one. The experiments under magnetic fields allow us to establish a magnetic field–temperature phase diagram around the spin ground state. Most interestingly, a relatively small magnetic field (0.3 to 3 T) can significantly suppress the antiferromagnetic order, suggesting an intriguing interplay of the Kitaev interaction and magnetic fields in the spin system. The present study provides fundamental insights into the highly anisotropic spin systems and opens a window to look into Kitaev spin physics in a rare-earth-based system. Published by the American Physical Society 2024

Funder

National Key Research and Development Program of China

Chinese Academy of Sciences

National Natural Science Foundation of China

Australian Nuclear Science and Technology Organisation

Paul Scherrer Institut

Publisher

American Physical Society (APS)

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