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Dual gauge field theory of quantum liquid crystals in two dimensions

机译:二维量子液晶的双量标场理论

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We present a self-contained review of the theory of dislocation-mediated quantum melting at zero temperature in two spatial dimensions. The theory describes the liquid-crystalline phases with spatial symmetries in between a quantum crystalline solid and an isotropic superfluid: quantum nematics and smectics. It is based on an Abelian-Higgs-type duality mapping of phonons onto gauge bosons ("stress photons''), which encode for the capacity of the crystal to propagate stresses. Dislocations and disclinations, the topological defects of the crystal, are sources for the gauge fields and the melting of the crystal can be understood as the proliferation (condensation) of these defects, giving rise to the Anderson-Higgs mechanism on the dual side. For the liquid crystal phases, the shear sector of the gauge bosons becomes massive signaling that shear rigidity is lost. After providing the necessary background knowledge, including the order parameter theory of two-dimensional quantum liquid crystals and the dual theory of stress gauge bosons in bosonic crystals, the theory of melting is developed step-by-step via the disorder theory of dislocation-mediated melting. Resting on symmetry principles, we derive the phenomenological imaginary time actions of quantum nematics and smectics and analyze the full spectrum of collective modes. The quantum nematic is a superfluid having a true rotational Goldstone mode due to rotational symmetry breaking, and the origin of this 'deconfined' mode is traced back to the crystalline phase. The two-dimensional quantum smectic turns out to be a dizzyingly anisotropic phase with the collective modes interpolating between the solid and nematic in a non-trivial way. We also consider electrically charged bosonic crystals and liquid crystals, and carefully analyze the electromagnetic response of the quantum liquid crystal phases. In particular, the quantum nematic is a real superconductor and shows the Meissner effect. Their special properties inherited from spatial symmetry breaking show up mostly at finite momentum, and should be accessible by momentum-sensitive spectroscopy. (C) 2017 Elsevier B.V. All rights reserved.
机译:我们在两个空间尺寸下呈现零温度下脱位介导的量子熔化理论的自我审查。该理论描述了在量子结晶固体和各向同性超流体之间的空间对称的液晶相。它基于Abelian-Higgs型的声子的二元映射到测量磁共振上(“应力光子”),其为晶体的容量编码以传播应力。脱位和公开,晶体的拓扑缺陷是源对于规格田地和晶体的熔化可以被理解为这些缺陷的增殖(冷凝),从而产生双侧的Anderson-Higgs机制。对于液晶阶段,测量孔的剪切扇区变为剪切刚度的巨大信号传播丢失。提供必要的背景知识,包括二维量子液晶的订单参数理论和散声晶体中应力计磁孔的双重理论,熔化理论是逐步开发的通过脱位介导的熔化的紊乱理论。依赖对称原理,我们推导出量子网络和椎体的现象学虚数作用,分析全谱的集体模式。量子向甲型是具有由于旋转对称性断裂而具有真正旋转金石模式的超流体,并且将该“折叠”模式的起源追溯到晶相。二维量子偏晶变出是一种具有眩晕的各向异性相位,其中集体模式以非平凡的方式在固体和向内插值之间插入。我们还考虑电带电荷的旋转晶体和液晶,并小心地分析量子液晶相的电磁响应。特别是,量子向甲型是真正的超导体,并显示出Meissner效果。它们从空间对称断裂继承的特殊属性主要在有限的动力下显示,并且应该通过动量敏感的光谱检查来访问。 (c)2017 Elsevier B.v.保留所有权利。

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