Survival of itinerant excitations and quantum spin state transitions in YbMgGaO<sub>4</sub> with chemical disorder.

Rao, X; Hussain, G; Huang, Q; Chu, W J; Li, N; Zhao, X; Dun, Z; Choi, E S et al. · Nat Commun · 2021

basic_science · Level V

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Abstract

A recent focus of quantum spin liquid (QSL) studies is how disorder/randomness in a QSL candidate affects its true magnetic ground state. The ultimate question is whether the QSL survives disorder or the disorder leads to a "spin-liquid-like" state, such as the proposed random-singlet (RS) state. Since disorder is a standard feature of most QSL candidates, this question represents a major challenge for QSL candidates. YbMgGaO<sub>4</sub>, a triangular lattice antiferromagnet with effective spin-1/2 Yb<sup>3+</sup>ions, is an ideal system to address this question, since it shows no long-range magnetic ordering with Mg/Ga site disorder. Despite the intensive study, it remains unresolved as to whether YbMgGaO<sub>4</sub> is a QSL or in the RS state. Here, through ultralow-temperature thermal conductivity and magnetic torque measurements, plus specific heat and DC magnetization data, we observed a residual κ<sub>0</sub>/T term and series of quantum spin state transitions in the zero temperature limit for YbMgGaO<sub>4</sub>. These observations strongly suggest that a QSL state with itinerant excitations and quantum spin fluctuations survives disorder in YbMgGaO<sub>4</sub>.