English

Chern-Weil Global Symmetries and How Quantum Gravity Avoids Them

High Energy Physics - Theory 2021-11-24 v2 High Energy Physics - Phenomenology

Abstract

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 F2H3F_2 \wedge H_3 and tr(F22)\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.

Keywords

Cite

@article{arxiv.2012.00009,
  title  = {Chern-Weil Global Symmetries and How Quantum Gravity Avoids Them},
  author = {Ben Heidenreich and Jacob McNamara and Miguel Montero and Matthew Reece and Tom Rudelius and Irene Valenzuela},
  journal= {arXiv preprint arXiv:2012.00009},
  year   = {2021}
}

Comments

62 pages + appendices, 5 figures. v2: References added