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From frustrated to unfrustrated: Coupling two triangular-lattice itinerant quantum magnets

机译:从令人沮丧的是没有推出的:连接两个三角格溜射量子磁铁

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摘要

Motivated by systems that can be seen as composed of two frustrated sublattices combined into a less frustrated total lattice, we study the double-exchange model with nearest-neighbor (NN) and next-nearest-neighbor (NNN) couplings on the honeycomb lattice. When adding NN hopping and its resulting double exchange to the antiferromagnetic (AFM) Heisenberg coupling, the resulting phase diagram is quite different from that of purely Heisenberg-like magnetic models and strongly depends on electron filling. For half filling, patterns of AFM dimers dominate, where the effective electronic bands remain graphenelike with Dirac cones in all phases, from the FM to the 120. limit. When the density of states at the Fermi level is sizable, we find noncoplanar incommensurate states as well as a small-vortex phase. Finally, a noncoplanar commensurate pattern realizes a Chern insulator at quarter filling. In the case of both NN and NNN hopping, the noncoplanar spin pattern inducing Chern insulators in triangular lattices is found to be quite stable under coupling into a honeycomb system. The resulting total phases are topologically nontrivial and either a Chern insulator with C = 2 or a magnetic topological crystalline insulator protected by a combination or mirror-reflection and time-reversal symmetries arise.
机译:由系统的动机可以被视为由两种沮丧的子组合组合成一个令人沮丧的总格子,我们研究了蜂窝格子上的最近邻(NN)和下一个最近邻(NNN)联轴器的双交换模型。当添加NN跳跃及其所产生的双交换到反铁磁(AFM)Heisenberg耦合时,所得到的相图与纯Heisenberg的磁模型完全不同,并且很大程度上取决于电子填充物。对于半填充,AFM二聚体的模式占主导地位,其中有效的电子带在所有阶段中的DIRAC锥体中保持石墨骨,从FM到120.限制。当FERMI水平的状态的密度是大量的,我们发现非转化族不称除的状态以及小涡旋阶段。最后,非平衡的相称模式在四分之一填充时实现了一个塞纳斗篷。在NN和NNN跳跃的情况下,发现在三角形格子中诱导塞仑绝缘体的非平板旋转图案在耦合到蜂窝系统中是非常稳定的。得到的总相是拓扑非常规的,并且具有C = 2的Chern绝缘体或由组合或镜面反射和时间反转对称保护的磁性拓扑结晶绝缘体。

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  • 来源
    《Physical review, B》 |2017年第8期|共11页
  • 作者单位

    Indiana Univ Dept Phys Bloomington IN 47405 USA;

    Univ Stuttgart Inst Funct Matter &

    Quantum Technol Pfaffenwaldring 57 D-70550 Stuttgart Germany;

    Univ Stuttgart Inst Funct Matter &

    Quantum Technol Pfaffenwaldring 57 D-70550 Stuttgart Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 固体物理学;
  • 关键词

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