论文标题

气泡壁力的现场理论推导

Field-theoretic derivation of bubble-wall force

论文作者

Mancha, Marc Barroso, Prokopec, Tomislav, Swiezewska, Bogumila

论文摘要

我们为作用于早期宇宙环境中一阶相变的气泡的力得出了一般的量子场理论公式。在热力学极限中,力与在气泡界面上施加力的活性物种气泡的熵增加。当达到局部热平衡时,我们发现一种强大的摩擦力,它会随着洛伦兹因子平方的平方而生长,因此气泡迅速到达固定状态并且无法逃跑。当散射在整个壁上可以忽略不计时,我们还研究了一个相反的情况(弹道极限),发现中等洛伦兹因子的力饱和,从而允许行为失控。我们将形式主义应用于庞大的真实标量场,标准模型及其简单的门户扩展。为了完整性,我们还提出了标准模型的重新归一化的一环,热能量张量的推导,并证明了其仪表独立性。

We derive a general quantum field theoretic formula for the force acting on expanding bubbles of a first order phase transition in the early Universe setting. In the thermodynamic limit the force is proportional to the entropy increase across the bubble of active species that exert a force on the bubble interface. When local thermal equilibrium is attained, we find a strong friction force which grows as the Lorentz factor squared, such that the bubbles quickly reach stationary state and cannot run away. We also study an opposite case when scatterings are negligible across the wall (ballistic limit), finding that the force saturates for moderate Lorentz factors thus allowing for a runaway behavior. We apply our formalism to a massive real scalar field, the standard model and its simple portal extension. For completeness, we also present a derivation of the renormalized, one-loop, thermal energy-momentum tensor for the standard model and demonstrate its gauge independence.

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