| Literature DB >> 34188044 |
Han Li1, Hao-Kai Zhang1,2, Jiucai Wang2,3, Han-Qing Wu4, Yuan Gao1, Dai-Wei Qu1, Zheng-Xin Liu5, Shou-Shu Gong6,7, Wei Li8,9,10.
Abstract
The frustrated magnet α-RuCl3 constitutes a fascinating quantum material platform that harbors the intriguing Kitaev physics. However, a consensus on its intricate spin interactions and field-induced quantum phases has not been reached yet. Here we exploit multiple state-of-the-art many-body methods and determine the microscopic spin model that quantitatively explains major observations in α-RuCl3, including the zigzag order, double-peak specific heat, magnetic anisotropy, and the characteristic M-star dynamical spin structure, etc. According to our model simulations, the in-plane field drives the system into the polarized phase at about 7 T and a thermal fractionalization occurs at finite temperature, reconciling observations in different experiments. Under out-of-plane fields, the zigzag order is suppressed at 35 T, above which, and below a polarization field of 100 T level, there emerges a field-induced quantum spin liquid. The fractional entropy and algebraic low-temperature specific heat unveil the nature of a gapless spin liquid, which can be explored in high-field measurements on α-RuCl3.Entities:
Year: 2021 PMID: 34188044 DOI: 10.1038/s41467-021-24257-8
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919