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Zoology of condensed matter: framids, ordinary stuff, extra-ordinary stuff

机译:凝结物的动物学:刺激,普通的东西,超普通的东西

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A bstract We classify condensed matter systems in terms of the spacetime symmetries they spontaneously break. In particular, we characterize condensed matter itself as any state in a Poincaré-invariant theory that spontaneously breaks Lorentz boosts while preserving at large distances some form of spatial translations, time-translations, and possibly spatial rotations. Surprisingly, the simplest, most minimal system achieving this symmetry breaking pattern — the framid — does not seem to be realized in Nature. Instead, Nature usually adopts a more cumbersome strategy: that of introducing internal translational symmetries — and possibly rotational ones — and of spontaneously breaking them along with their space-time counterparts, while preserving unbroken diagonal subgroups. This symmetry breaking pattern describes the infrared dynamics of ordinary solids, fluids, superfluids, and — if they exist — supersolids. A third, “extra-ordinary”, possibility involves replacing these internal symmetries with other symmetries that do not commute with the Poincaré group, for instance the galileon symmetry, supersymmetry or gauge symmetries. Among these options, we pick the systems based on the galileon symmetry, the “ galileids ”, for a more detailed study. Despite some similarity, all different patterns produce truly distinct physical systems with different observable properties. For instance, the low-energy 2 → 2 scattering amplitudes for the Goldstone excitations in the cases of framids, solids and galileids scale respectively as E _(2), E _(4), and E _(6). Similarly the energy momentum tensor in the ground state is “trivial” for framids ( ρ + p = 0), normal for solids ( ρ + p & 0) and even inhomogenous for galileids.
机译:Bstract我们根据他们自发破裂的时空对称性来分类凝聚态的物品系统。特别是,我们将浓缩物质本身表征为庞大的不变理论中的任何状态,以便在大距离处保留某种形式的空间翻译,时间翻译和可能的空间旋转时自发地破坏洛伦兹的任何状态。令人惊讶的是,最简单,最小的系统实现这种对称性破碎模式 - 富峰 - 似乎没有在自然界中实现。相反,自然通常采用更繁琐的策略:引入内部翻译对称 - 以及可能旋转的策略 - 以及自发地与他们的时空对应物一起打破它们,同时保留不间断的对角线组。这种对称性破坏模式描述了普通固体,流体,超流体的红外动态,以及 - 如果存在 - 超糖。第三,“超普通”,可能性涉及用与Poincaré组不通勤的其他对称性取代这些内部对称,例如伽利罗对称,超对称或计量对称。在这些选项中,我们根据伽利洛对称,“加里西德”,以获取更详细的研究。尽管存在一些相似性,但所有不同的模式都会产生具有不同观察性质的真正不同的物理系统。例如,在捕获的情况下,在捕鼠器,固体和加蓟秤的情况下,低能量2→2散射幅度,用于捕获的壳体,固体和加入尺度为E _(2),E _(4)和E _(6)。类似地,基地的能量动量张量是刺激物(ρ+ p = 0)的“微不足道”,正常用于固体(ρ+ p& 0),甚至对加里西尔均不源于原源性。

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