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Response properties of axion insulators and Weyl semimetals driven by screw dislocations and dynamical axion strings

机译:轴错位和动力轴串驱动轴绝缘子和Weyl半金属的响应特性

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In this paper, we investigate the theory of dynamical axion strings emerging from chiral symmetry breaking in three-dimensional Weyl semimetals. The chiral symmetry is spontaneously broken by a charge density wave (CDW) order which opens an energy gap and converts the Weyl semimetal into an axion insulator. Indeed, the phase fluctuations of the CDW order parameter act as a dynamical axion field 9 ((x), t) and couple to electromagnetic field via L_θ = θ(x,t)/32π~2∈~(στνμ)F_(στF_(νμ). Additionally, when the axion insulator is coupled to deformations of the background geometry/strain fields via torsional defects, e.g., screw dislocations, there is interesting interplay between the crystal dislocations and dynamical axion strings. For example, the screw dislocation traps axial charge, and there is a Berry phase accumulation when an axion string (which carries axial flux) is braided with a screw dislocation. In addition, a cubic coupling between the axial current and the geometry fields is nonvanishing and indicates a Berry phase accumulation during a particular three-loop braiding procedure where a dislocation loop is braided with another dislocation and they are both threaded by an axion string. We also observe a chiral magnetic effect induced by a screw dislocation density in the absence of a nodal energy imbalance between Weyl points and describe an additional chiral geometric effect and a geometric Witten effect.
机译:在本文中,我们研究了三维Weyl半金属中由于手性对称性断裂而产生的动力轴心轴的理论。电荷密度波(CDW)顺序自发地破坏了手征对称性,从而打开了一个能隙并将Weyl半金属转变为轴突绝缘体。实际上,CDW阶跃参数的相位波动起着动态轴野场9((x),t)的作用,并且通过L_θ=θ(x,t)/32π〜2∈〜(στνμ)F_(στF_ (νμ)。另外,当轴突绝缘体通过扭转缺陷(例如,螺旋位错)耦合到背景几何形状/应变场的变形时,晶体位错与动态轴突弦之间会发生有趣的相互作用。轴向电荷,当轴串(带有轴向通量)与螺旋位错编织在一起时,存在贝里相累积;此外,轴向电流与几何场之间的立方耦合消失了,表明在此期间贝里相累积一个特殊的三环编织程序,其中一个位错环与另一个位错编织在一起,并且它们都由一个轴突串在一起。 Weyl点之间的节点能量不平衡,并描述了额外的手性几何效应和几何维滕效应。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2016年第8期|085102.1-085102.11|共11页
  • 作者单位

    Department of Physics, University of Illinois, 1110 West Green Street, Urbana, Illinois 61801-3080, USA;

    Department of Physics, Korea Advanced Institute of Science and Technology, Daejeon 305-701, Korea;

    Department of Physics, University of Illinois, 1110 West Green Street, Urbana, Illinois 61801-3080, USA;

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