论文标题

Chern-Weil全球对称性以及量子重力如何避免它们

Chern-Weil Global Symmetries and How Quantum Gravity Avoids Them

论文作者

Heidenreich, Ben, McNamara, Jacob, Montero, Miguel, Reece, Matthew, Rudelius, Tom, Valenzuela, Irene

论文摘要

我们提请人们注意一类普遍的全球对称性,我们称之为“ Chern-Weil Global对称性”,这些对称性在规格理论中无处不在。这些Chern-Weil全球对称性的Noether电流由量规场优势的楔形产品(例如$ f_2 \ wedge H_3 $和$ \ text {tr}(f_2^2)$),其保护来自Bianchi身份。结果,它们并不容易中断。但是,人们普遍认为,在量子重力的一致理论中不允许精确的全局对称性。结果,当该理论耦合到重力时,必须打破或评估任何低能量有效场理论中的任何Chern-Weil全局对称性。在本文中,我们探讨了在有效的田间理论和弦理论中可能破坏或评估Chern-Weil对称性的过程。我们将看到,弦理论中的许多熟悉现象,例如斧子,切尔 - 西蒙斯术语,世界情报的自由度以及以其他麸皮结尾或溶解的麸皮,可以解释为缺乏量子重力中的Chern-Weil对称性的后果,这表明它们可能是量子膜的一般特征。我们进一步讨论了破坏和衡量Chern-Weil对称性对粒子现象学和广告批量理论的边界CFT的含义。因此,Chern-Weil全球对称性为理解量子场理论和量子重力的许多熟悉方面提供了一个统一的框架。

We draw attention to a class of generalized global symmetries, which we call "Chern-Weil global symmetries," that arise ubiquitously in gauge theories. The Noether currents of these Chern-Weil global symmetries are given by wedge products of gauge field strengths, such as $F_2 \wedge H_3$ and $\text{tr}(F_2^2)$, and their conservation follows from Bianchi identities. As a result, they are not easy to break. However, it is widely believed that exact global symmetries are not allowed in a consistent theory of quantum gravity. As a result, any Chern-Weil global symmetry in a low-energy effective field theory must be either broken or gauged when the theory is coupled to gravity. In this paper, we explore the processes by which Chern-Weil symmetries may be broken or gauged in effective field theory and string theory. We will see that many familiar phenomena in string theory, such as axions, Chern-Simons terms, worldvolume degrees of freedom, and branes ending on or dissolving in other branes, can be interpreted as consequences of the absence of Chern-Weil symmetries in quantum gravity, suggesting that they might be general features of quantum gravity. We further discuss implications of breaking and gauging Chern-Weil symmetries for particle phenomenology and for boundary CFTs of AdS bulk theories. Chern-Weil global symmetries thus offer a unified framework for understanding many familiar aspects of quantum field theory and quantum gravity.

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