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α-ZrCl_{3}和晶态自旋轨道液体中的突发 SU(4) 对称性。

Emergent SU(4) Symmetry in α-ZrCl_{3} and Crystalline Spin-Orbital Liquids.

机构信息

Institute for Solid State Physics, University of Tokyo, Kashiwa 277-8581, Japan.

Institute for Functional Matter and Quantum Technologies, University of Stuttgart, Pfaffenwaldring 57, D-70569 Stuttgart, Germany.

出版信息

Phys Rev Lett. 2018 Aug 31;121(9):097201. doi: 10.1103/PhysRevLett.121.097201.

Abstract

While the enhancement of spin-space symmetry from the usual SU(2) to SU(N) is promising for finding nontrivial quantum spin liquids, its realization in magnetic materials remains challenging. Here, we propose a new mechanism by which SU(4) symmetry emerges in the strong spin-orbit coupling limit. In d^{1} transition metal compounds with edge-sharing anion octahedra, the spin-orbit coupling gives rise to strongly bond-dependent and apparently SU(4)-breaking hopping between the J_{eff}=3/2 quartets. However, in the honeycomb structure, a gauge transformation maps the system to an SU(4)-symmetric Hubbard model. In the strong repulsion limit at quarter filling, as realized in α-ZrCl_{3}, the low-energy effective model is the SU(4) Heisenberg model on the honeycomb lattice, which cannot have a trivial gapped ground state and is expected to host a gapless spin-orbital liquid. By generalizing this model to other three-dimensional lattices, we also propose crystalline spin-orbital liquids protected by this emergent SU(4) symmetry and space group symmetries.

摘要

虽然 spin-space 对称性从通常的 SU(2)增强到 SU(N)有望发现非平凡的量子自旋液体,但在磁性材料中实现这一目标仍然具有挑战性。在这里,我们提出了一种新的机制,即在强自旋轨道耦合极限下出现 SU(4)对称性。在具有共用边的阴离子八面体的 d^{1}过渡金属化合物中,自旋轨道耦合导致强烈依赖于键且明显破坏 SU(4)的 J_{eff}=3/2 四重态之间的跳跃。然而,在蜂窝结构中,规范变换将系统映射到一个 SU(4)对称的 Hubbard 模型。在 quarter 填充的强排斥极限下,如在 α-ZrCl_{3}中实现的那样,低能有效模型是蜂窝晶格上的 SU(4)海森堡模型,它不能具有平凡的带隙基态,预计将存在无带隙的自旋轨道液体。通过将该模型推广到其他三维晶格,我们还提出了受这种涌现的 SU(4)对称性和空间群对称性保护的晶态自旋轨道液体。

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