论文标题
4D n = 1的量子校正量较小距离和弱重力猜想
Quantum Corrections in 4d N=1 Infinite Distance Limits and the Weak Gravity Conjecture
论文作者
论文摘要
我们研究了在量子重力猜想的背景下,具有$ n = 1 $超对称性的四维理论中的量子校正。根据新兴的弦猜想,量子重力的无限距离限制会导致理论分解或导致弱耦合的弦理论。我们在$ n = 1 $ supersympricric F理论的框架中验证了这一猜想,包括四个维度,包括扰动$α'$以及非扰动校正。在经典级别证明了出现的临界字符串的独特性之后,我们表明量子校正完全阻碍了那些限制的限制,在这些限制中,紧急临界字符串的标准将参数位于Kaluza-Klein量表以下。相比之下,渐近无张力的绳子的张力位于Kaluza-Klein量表的限制并没有阻塞。在本文的第二部分中,我们研究了量子校正对弱重力构想的影响,从严格的弱耦合极限远离。我们提出,量规阈值校正和质量重量级化效应改变了四个维度的超级肢体性。对于F理论中的无限距离限制,经典的超级超级限制通常会受到紧急杂种弦的激发塔中的sublattice的满足。通过将F理论$α'$校正匹配以衡量双重杂质理论的阈值校正,我们预测了该塔的质量必须重新拟定,以使弱的重力猜想在量子水平上保持。
We study quantum corrections in four-dimensional theories with $N=1$ supersymmetry in the context of Quantum Gravity Conjectures. According to the Emergent String Conjecture, infinite distance limits in quantum gravity either lead to decompactification of the theory or result in a weakly coupled string theory. We verify this conjecture in the framework of $N=1$ supersymmetric F-theory compactifications to four dimensions including perturbative $α'$ as well as non-perturbative corrections. After proving uniqueness of the emergent critical string at the classical level, we show that quantum corrections obstruct precisely those limits in which the scale of the emergent critical string would lie parametrically below the Kaluza-Klein scale. Limits in which the tension of the asymptotically tensionless string sits at the Kaluza-Klein scale, by contrast, are not obstructed. In the second part of the paper we study the effect of quantum corrections for the Weak Gravity Conjecture away from the strict weak coupling limit. We propose that gauge threshold corrections and mass renormalisation effects modify the super-extremality bound in four dimensions. For the infinite distance limits in F-theory the classical super-extremality bound is generically satisfied by a sublattice of states in the tower of excitations of an emergent heterotic string. By matching the F-theory $α'$ corrections to gauge threshold corrections of the dual heterotic theory we predict how the masses of this tower must be renormalised in order for the Weak Gravity Conjecture to hold at the quantum level.