论文标题

一般相对论和量子场理论中的能量条件

Energy conditions in general relativity and quantum field theory

论文作者

Kontou, Eleni-Alexandra, Sanders, Ko

论文摘要

这篇综述总结了一般相对论和量子场理论中能量条件的当前状态。我们提供了历史审查和技术结果和应用的摘要,并提供了一些新的推导和讨论。我们特别关注运动方程的作用以及古典理论和量子理论之间的关系。 在一般相对论的背景下,首先将点能量条件作为对物质的物理合理限制引入。他们的目标是表达例如质量的积极性或重力的吸引力。也许更重要的是,它们被用作数学相对论的假设,以证明奇异定理和虫洞的不存在和类似的异国情调现象。但是,概念简单,一般有效性和强大的结果之间的微妙平衡面临着严重的挑战,因为所有点能量条件都被量子场和一些相当简单的古典领域系统侵犯。为了应对这些挑战,引入了较弱的陈述,例如量子能量不平等和平均能量条件。这些具有较大的有效性,并且可能仍然足以证明至少一些早期的结果。这些条件之一,即平均的无效能量条件,最近引起了人们的关注。即使在半经典或量子重力的背景下,也有望成为所有引力物理物质的动力学的普遍特性。

This review summarizes the current status of the energy conditions in general relativity and quantum field theory. We provide a historical review and a summary of technical results and applications, complemented with a few new derivations and discussions. We pay special attention to the role of the equations of motion and to the relation between classical and quantum theories. Pointwise energy conditions were first introduced as physically reasonable restrictions on matter in the context of general relativity. They aim to express e.g. the positivity of mass or the attractiveness of gravity. Perhaps more importantly, they have been used as assumptions in mathematical relativity to prove singularity theorems and the non-existence of wormholes and similar exotic phenomena. However, the delicate balance between conceptual simplicity, general validity and strong results has faced serious challenges, because all pointwise energy conditions are systematically violated by quantum fields and also by some rather simple classical fields. In response to these challenges, weaker statements were introduced, such as quantum energy inequalities and averaged energy conditions. These have a larger range of validity and may still suffice to prove at least some of the earlier results. One of these conditions, the achronal averaged null energy condition, has recently received increased attention. It is expected to be a universal property of the dynamics of all gravitating physical matter, even in the context of semiclassical or quantum gravity.

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