论文标题

使用弱重力朝向全球对称性猜想

Towards a Swampland Global Symmetry Conjecture using Weak Gravity

论文作者

Daus, Tristan, Hebecker, Arthur, Leonhardt, Sascha, March-Russell, John

论文摘要

人们普遍相信,部分确定了确切的全局对称性与量子重力不一致。然后,人们期望可以通过量子重力或滚动参数对近似的全局对称性进行定量约束。我们为重要类别的全球对称性提供了这样的约束:由测量的$ u(1)$引起的,矢量通过用斧头进行了巨大的矢量。后者必须使用理论的临界值来使用轴突弱重力猜想的电气和磁性版本来限制其作用。结果,存在具有抑制因子不小于$ \ exp(-m _ {\ rm p}^2/λ^2)$的静态对称性破坏算子,其中$λ$是4D有效理论的临界值。我们提供一个一般性的论点,并阐明$λ$的含义。提出了简单的4D和5D模型来说明这一点,我们回想起这是用Brane Instantons的字符串压缩来实现事物的标准方式。讨论了我们的约束与可以从虫洞或重力激体散发出来的边界以及在有限温度下受到黑洞效应激励的界限的关系,我们将GIDD​​INGS-Strominger蠕虫孔解决方案的概括性介绍给衡量级别的$ U(1)$ Global Symmetry。最后,我们讨论了我们的论点的潜在漏洞。

It is widely believed and in part established that exact global symmetries are inconsistent with quantum gravity. One then expects that approximate global symmetries can be quantitatively constrained by quantum gravity or swampland arguments. We provide such a bound for an important class of global symmetries: Those arising from a gauged $U(1)$ with the vector made massive via Higgsing with an axion. The latter necessarily couples to instantons, and their action can be constrained, using both the electric and magnetic version of the axionic weak gravity conjecture, in terms of the cutoff of the theory. As a result, instanton-induced symmetry breaking operators with a suppression factor not smaller than $\exp(-M_{\rm P}^2/Λ^2)$ are present, where $Λ$ is a cutoff of the 4d effective theory. We provide a general argument and clarify the meaning of $Λ$. Simple 4d and 5d models are presented to illustrate this, and we recall that this is the standard way in which things work out in string compactifications with brane instantons. The relation of our constraint to bounds that can be derived from wormholes or gravitational instantons and to those motivated by black-hole effects at finite temperature are discussed, and we present a generalization of the Giddings-Strominger wormhole solution to the case of a gauge-derived $U(1)$ global symmetry. Finally, we discuss potential loopholes to our arguments.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源