规范场论真空和宇宙暴胀

G. Savvidy
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引用次数: 0

摘要

当我们考虑真空场的量子涨落对暗能量和有效宇宙常数的贡献时,基本粒子物理学和宇宙学之间的深刻相互关系就会显现出来。零点能量的贡献超过了宇宙能量密度的观测宇宙学上界许多个数量级。因此,预期基本场的真空波动将以任何方式影响宇宙演化似乎是很自然的。在这篇综述文章中,我们的目的是描述最近关于杨-米尔斯真空极化和色磁凝聚对弗里德曼宇宙学演化、暴胀和原始引力波的影响的研究。利用有效拉格朗日方法导出了规范场理论的量子能量-动量张量和相应的量子态方程。能量动量张量有一个与时空度规成比例的项,并对有效宇宙常数提供有限的非发散贡献。这使得研究规范场理论真空极化对弗里德曼宇宙学、暴胀和原始引力波演化的影响成为可能。由规范场论真空极化引起的弗里德曼方程的I-IV型解提供了另一种暴胀机制和晚时加速的可能性。弗里德曼方程的II型解产生有限持续时间宇宙的初始指数膨胀,IV型解表现出晚时加速。这些解满足了原始引力波放大的必要条件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Gauge Field Theory Vacuum and Cosmological Inflation
The deep interrelation between elementary particle physics and cosmology manifests itself when one considers the contribution of quantum fluctuations of vacuum fields to the dark energy and the effective cosmological constant. The contribution of zero-point energy exceeds by many orders of magnitude the observational cosmological upper bound on the energy density of the universe. Therefore it seems natural to expect that vacuum fluctuations of the fundamental fields would influence the cosmological evolution in any way. Our aim in this review article is to describe a recent investigation of the influence of the Yang-Mills vacuum polarisation and of the chromomagnetic condensation on the evolution of Friedmann cosmology, on inflation and on primordial gravitational waves. We derive the quantum energy-momentum tensor and the corresponding quantum equation of state for gauge field theory using the effective Lagrangian approach. The energy-momentum tensor has a term proportional to the space-time metric and provides a finite non-diverging contribution to the effective cosmological constant. This allows to investigate the influence of the gauge field theory vacuum polarisation on the evolution of Friedmann cosmology, inflation and primordial gravitational waves. The Type I-IV solutions of the Friedmann equations induced by the gauge field theory vacuum polarisation provide an alternative inflationary mechanism and a possibility for late-time acceleration. The Type II solution of the Friedmann equations generates the initial exponential expansion of the universe of finite duration and the Type IV solution demonstrates late-time acceleration. The solutions fulfil the necessary conditions for the amplification of primordial gravitational waves.
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