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首页> 外文期刊>Physical review >Kitaev anisotropy induces mesoscopic Z_2 vortex crystals in frustrated hexagonal antiferromagnets
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Kitaev anisotropy induces mesoscopic Z_2 vortex crystals in frustrated hexagonal antiferromagnets

机译:Kitaev各向异性在受挫的六角反铁磁体中诱导介观的Z_2涡旋晶体

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摘要

The triangular-lattice Heisenberg antiferromagnet (HAF) is known to carry topological Z_2 vortex excitations which form a gas at finite temperatures. Here we show that the spin-orbit interaction, introduced via a Kitaev term in the exchange Hamiltonian, condenses these vortices into a triangular Z_2 vortex crystal at zero temperature. The cores of the Z_2 vortices show abrupt, soliton-like magnetization modulations and arise by a special intertwining of three honeycomb superstructures of ferromagnetic domains, one for each of the three sublattices of the 120° state of the pure HAF. This is an example of a nucleation transition, analogous to the spontaneous formation of magnetic domains, Abrikosov vortices in type-Ⅱ superconductors, blue phases in cholesteric liquid crystals, and skyrmions in chiral helimagnets. As the mechanism relies on the interplay of geometric frustration and spin-orbital anisotropies, such vortex mesophases can materialize as a ground state property in spin-orbit coupled correlated systems with nearly hexagonal topology, as in triangular or strongly frustrated honeycomb iridates.
机译:已知三角形晶格的海森堡反铁磁体(HAF)具有拓扑Z_2涡旋激发,在有限的温度下会形成气体。在这里,我们显示了通过交换交换哈密顿量中的Kitaev项引入的自旋轨道相互作用,在零温度下将这些涡旋凝聚成Z_2三角形涡旋晶体。 Z_2涡旋的核心表现出陡峭的孤子状磁化调制,并通过铁磁畴的三个蜂窝超结构的特殊缠结而产生,纯HAF的120°态的三个子晶格中的每一个都有一个。这是成核转变的一个例子,类似于自发形成的磁畴,Ⅱ型超导体中的Abrikosov涡旋,胆甾型液晶中的蓝相以及手性Helimagnets中的天空离子。由于该机制依赖于几何挫折与自旋轨道各向异性的相互作用,因此这种涡旋中间相可以在具有近似六边形拓扑结构的自旋轨道耦合相关系统中实现为基态性质,例如在三角形或强烈挫折的蜂窝状铱酸盐中。

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  • 来源
    《Physical review》 |2016年第10期|104417.1-104417.16|共16页
  • 作者单位

    Institute for Theoretical Solid State Physics, IFW Dresden, Helmholtzstrasse 20, 01069 Dresden, Germany ,School of Physics and Astronomy, University of Minnesota, Minneapolis, Minnesota 55455, USA;

    Institute for Theoretical Solid State Physics, IFW Dresden, Helmholtzstrasse 20, 01069 Dresden, Germany;

    Institute for Theoretical Solid State Physics, IFW Dresden, Helmholtzstrasse 20, 01069 Dresden, Germany;

    Institute for Theoretical Solid State Physics, IFW Dresden, Helmholtzstrasse 20, 01069 Dresden, Germany ,Institute for Functional Materials and Quantum Technologies, University of Stuttgart, Pfaffenwaldring 57, D-70550 Stuttgart, Germany;

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