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在 Kitaev 蜂窝模型中出现了一个场驱动的 U(1)自旋液体。

Emergence of a field-driven U(1) spin liquid in the Kitaev honeycomb model.

机构信息

Institute for Theoretical Physics, University of Cologne, 50937, Cologne, Germany.

出版信息

Nat Commun. 2019 Jan 31;10(1):530. doi: 10.1038/s41467-019-08459-9.

Abstract

In the field of quantum magnetism, the exactly solvable Kitaev honeycomb model serves as a paradigm for the fractionalization of spin degrees of freedom and the formation of [Formula: see text] quantum spin liquids. An intense experimental search has led to the discovery of a number of spin-orbit entangled Mott insulators that realize its characteristic bond-directional interactions and, in the presence of magnetic fields, exhibit no indications of long-range order. Here, we map out the complete phase diagram of the Kitaev model in tilted magnetic fields and report the emergence of a distinct gapless quantum spin liquid at intermediate field strengths. Analyzing a number of static, dynamical, and finite temperature quantities using numerical exact diagonalization techniques, we find strong evidence that this phase exhibits gapless fermions coupled to a massless U(1) gauge field. We discuss its stability in the presence of perturbations that naturally arise in spin-orbit entangled candidate materials.

摘要

在量子磁性领域,完全可解的 Kitaev 蜂窝模型是自旋自由度分数化和形成[公式:见正文]量子自旋液体的范例。强烈的实验探索导致了一系列自旋轨道纠缠的莫特绝缘体的发现,这些绝缘体实现了其特征的键向相互作用,并且在存在磁场的情况下,没有表现出长程有序的迹象。在这里,我们在倾斜磁场中描绘了 Kitaev 模型的完整相图,并报告了在中等场强下出现明显的无能隙量子自旋液体。通过使用数值精确对角化技术分析许多静态、动态和有限温度的量,我们发现有很强的证据表明,这个相表现出与无质量 U(1)规范场耦合的无能隙费米子。我们讨论了在自然出现在自旋轨道纠缠候选材料中的微扰下的稳定性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/35d1/6355955/246ce7a1392c/41467_2019_8459_Fig1_HTML.jpg

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