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Nonlinear vacuum electrodynamics and spontaneous breaking of Lorentz symmetry

机译:洛伦兹对称性的非线性真空电动力和自发性破坏

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We study spontaneous breaking of Lorentz symmetry in nonlinear vacuum electrodynamics. Using a first-order formulation of the latter proposed by Plebanski, we apply a Dirac constraint analysis and derive an effective Hamiltonian. We show that there exists a large class of potentials for which the effective Hamiltonian is bounded from below, while at the same time possessing local minima in which the field strength acquires a nonzero vacuum expectation value, thereby breaking Lorentz invariance spontaneously. These possible vacua can be classified in four classes, depending on the way Lorentz symmetry is broken. We show that the small field fluctuations around these vacua involve modes for which the dynamics can develop degeneracies, resulting in shock-wave-like and/or superluminal motion. Finally, we study the physical applicability of these models, and show how the Lorentz breaking vacua might in principle be detected by coupling the model to a suitable external current, or to gravity.
机译:我们在非线性真空电动力学中研究了Lorentz对称性的自发破碎。使用Plebanski提出的后期制定,我们应用DIRAC约束分析并获得有效的汉密尔顿人。我们表明,存在有效的Hamiltonian的大量潜力,其中有效的Hamiltonian从下面界定,而具有局部强度的局部最小值地获取非零真空期望值,从而自发地打破洛伦兹不变性。这些可能的Vacua可以分为四个类,这取决于Lorentz对称性破裂的方式。我们表明,这些VIACA周围的小场波动涉及动态可以发育变性的模式,导致冲击波和/或超级运动。最后,我们研究了这些模型的物理适用性,并展示了如何通过将模型耦合到合适的外部电流或重力来检测如何检测Lorentz破坏Vacua。

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