Spin-Liquid--to--Spin-Liquid Transition in Kitaev Magnets Driven by Fractionalization
Abstract
While phase transitions between magnetic analogs of three states of matter --- a long-range ordered state, paramagnet, and spin liquid --- have been extensively studied, the possibility of "liquid-liquid" transitions, namely, between different spin liquids, remains elusive. By introducing the additional Ising coupling into the honeycomb Kitaev model with bond asymmetry, we discover that the Kitaev spin liquid turns into a spin-nematic quantum paramagnet before a magnetic order is established by the Ising coupling. The quantum phase transition between the two liquid states accompanies a topological change driven by fractionalized excitations, the gauge fluxes, and is of first order. At finite temperatures, this yields a persisting first-order transition line that terminates at a critical point located deep inside the regime where quantum spins are fractionalized. It is suggested that similar transitions may occur in other perturbed Kitaev magnets with bond asymmetry.
Keywords
Cite
@article{arxiv.1610.07343,
title = {Spin-Liquid--to--Spin-Liquid Transition in Kitaev Magnets Driven by Fractionalization},
author = {Joji Nasu and Yasuyuki Kato and Junki Yoshitake and Yoshitomo Kamiya and Yukitoshi Motome},
journal= {arXiv preprint arXiv:1610.07343},
year = {2017}
}
Comments
8 pages, 6 figures