August 2024

Journal

Static magnetic order with strong quantum fluctuations in spin-1/2 honeycomb magnet Na2Co2TeO6

By:
Jiao, Jinlong; Li, Xiyang; Lin, Gaoting; Shu, Mingfang; Xu, Wei; Zaharko, Oksana; Shiroka, T; Hong, Tao ; Kolesnikov, Alexander I; Deng, Guochu; Dunsiger, Sarah; Aronson, Maigan; Zhou, Haidong; Wang, Xiaoqun; Shang, Tian; Ma, Jie
Journal Name:
Communications Materials
Page Number:
159
Volume:
5
Issue Number:
1
Publication Date:
August 2024
View DOI Listing:
https://doi.org/10.1038/s43246-024-00594-1

Abstract

Kitaev interactions, arising from the interplay of frustration and bond anisotropy, can lead to strong quantum fluctuations and, in an ideal case, to a quantum-spin-liquid state. However, in many nonideal materials, spurious non-Kitaev interactions typically promote a zigzag antiferromagnetic order in the d-orbital transition-metal compounds. Here, by combining neutron scattering with muon-spin rotation and relaxation techniques, we provide mechanism insights into the exotic properties of Na2Co2TeO6, a candidate material of the Kitaev model. Below TN, the zero-field muon-spin relaxation rate becomes almost constant (~0.45 μs−1). We attribute this temperature-independent relaxation rate to the strong quantum fluctuations, as well as to the frustrated Kitaev interactions. As the magnetic field increases, neutron scattering data indicate a broader spin-wave excitation at the K-point. Therefore, quantum fluctuations seem not only robust but are even enhanced by the applied magnetic field. Our findings provide valuable hints for understanding the onset of the quantum-spin-liquid state in Kitaev materials.