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近藤 Kitaev 量子自旋液体行为在蜂窝状磁体中。

Proximate Kitaev quantum spin liquid behaviour in a honeycomb magnet.

机构信息

Quantum Condensed Matter Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37830, USA.

Chemical Sciences Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37830, USA.

出版信息

Nat Mater. 2016 Jul;15(7):733-40. doi: 10.1038/nmat4604. Epub 2016 Apr 4.

Abstract

Quantum spin liquids (QSLs) are topological states of matter exhibiting remarkable properties such as the capacity to protect quantum information from decoherence. Whereas their featureless ground states have precluded their straightforward experimental identification, excited states are more revealing and particularly interesting owing to the emergence of fundamentally new excitations such as Majorana fermions. Ideal probes of these excitations are inelastic neutron scattering experiments. These we report here for a ruthenium-based material, α-RuCl3, continuing a major search (so far concentrated on iridium materials) for realizations of the celebrated Kitaev honeycomb topological QSL. Our measurements confirm the requisite strong spin-orbit coupling and low-temperature magnetic order matching predictions proximate to the QSL. We find stacking faults, inherent to the highly two-dimensional nature of the material, resolve an outstanding puzzle. Crucially, dynamical response measurements above interlayer energy scales are naturally accounted for in terms of deconfinement physics expected for QSLs. Comparing these with recent dynamical calculations involving gauge flux excitations and Majorana fermions of the pure Kitaev model, we propose the excitation spectrum of α-RuCl3 as a prime candidate for fractionalized Kitaev physics.

摘要

量子自旋液体(QSLs)是一类具有奇异性质的物质拓扑态,例如能够保护量子信息免受退相干的影响。虽然它们无特征的基态使得它们难以直接进行实验识别,但激发态则更为明显,尤其是由于出现了像马约拉纳费米子这样的全新激发态,激发态特别有趣。探测这些激发态的理想探针是非弹性中子散射实验。我们在此报告了一种基于钌的材料α-RuCl3 的相关实验结果,这延续了对著名的 Kitaev 蜂窝拓扑 QSL 实现的重要探索(迄今为止主要集中在铱材料上)。我们的测量结果证实了所需的强自旋轨道耦合和低温磁序与 QSL 相匹配。我们发现了堆积层错,这是材料高度二维性质所固有的,解决了一个悬而未决的难题。至关重要的是,对于超出层间能量尺度的动力学响应测量,可以根据 QSL 预期的解禁闭物理进行自然解释。我们将这些测量结果与涉及纯 Kitaev 模型中规范通量激发和马约拉纳费米子的最近动力学计算进行了比较,提出了 α-RuCl3 的激发谱是分数化 Kitaev 物理的一个主要候选者。

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