Proximate Kitaev Quantum Spin Liquid Behaviour in {\alpha}-RuCl$_3$
A. Banerjee, C.A. Bridges, J-Q. Yan, A.A. Aczel, L. Li, M.B. Stone,, G.E. Granroth, M.D. Lumsden, Y. Yiu, J. Knolle, D.L. Kovrizhin, S., Bhattacharjee, R. Moessner, D.A. Tennant, D.G. Mandrus, S.E. Nagler

TL;DR
This paper presents experimental evidence that { extalpha}-RuCl$_3$ exhibits Kitaev quantum spin liquid behavior, making it a promising candidate for studying fractionalized excitations and topological quantum states.
Contribution
The study demonstrates that { extalpha}-RuCl$_3$ realizes Kitaev physics with strong spin-orbit coupling and proximate quantum spin liquid phase, suitable for neutron scattering investigations.
Findings
Confirmation of strong spin-orbit coupling in { extalpha}-RuCl$_3$
Magnetic order consistent with proximity to QSL phase
Stacking faults explain previous experimental puzzles
Abstract
Topological states of matter such as quantum spin liquids (QSLs) are of great interest because of their remarkable predicted properties including protection of quantum information and the emergence of Majorana fermions. Such QSLs, however, have proven difficult to identify experimentally. The most promising approach is to study their exotic nature via the wave-vector and intensity dependence of their dynamical response in neutron scattering. A major search has centered on iridate materials which are proposed to realize the celebrated Kitaev model on a honeycomb lattice - a prototypical topological QSL system in two dimensions (2D). The difficulties of iridium for neutron measurements have, however, impeded progress significantly. Here we provide experimental evidence that a material based on ruthenium, {\alpha}-RuCl realizes the same Kitaev physics but is highly amenable to neutron…
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