有限$N$和$k$处物质的交叉对称chen - simons理论

IF 1 4区 物理与天体物理 Q3 PHYSICS, MATHEMATICAL Advances in Theoretical and Mathematical Physics Pub Date : 2022-10-13 DOI:10.4310/atmp.2023.v27.n1.a5
Umang Mehta, Shiraz Minwalla, Chintan Patel, S. Prakash, Kartik Sharma
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引用次数: 5

摘要

我们提出了在$2+1$维中与大质量物质相互作用的chen - simons规范理论的交叉对称规则的一个猜想。我们的交叉规则是根据威尔森线的特定缠结的期望值给出的,并在大的陈-西蒙斯水平上简化为标准规则。对于$SU(N)_k$和$U(N)_k$理论中两个基本插入和两个反基本插入的特殊情况,我们给出了完全明确的结果。这些公式与这些理论之间推测的水平秩、玻色-费米二象性是一致的,并采取了它们巨大的$k$对应物的$q=e^{\frac{ 2 \pi i }{\kappa}}$变形的形式。在't Hooft大$N$限制中,我们的结果通过一个扭曲减少到标准规则:单线态通道中的$S$ -矩阵通过因子$\frac{\sin \pi \lambda}{\pi \lambda} $减少(其中$\lambda$是't Hooft耦合),解释了在早期直接大型$N$计算中观察到的“异常”交叉特性。
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Crossing symmetry in matter Chern–Simons theories at finite $N$ and $k$
We present a conjecture for the crossing symmetry rules for Chern-Simons gauge theories interacting with massive matter in $2+1$ dimensions. Our crossing rules are given in terms of the expectation values of particular tangles of Wilson lines, and reduce to the standard rules at large Chern-Simons level. We present completely explicit results for the special case of two fundamental and two antifundamental insertions in $SU(N)_k$ and $U(N)_k$ theories. These formulae are consistent with the conjectured level-rank, Bose-Fermi duality between these theories and take the form of a $q=e^{\frac{ 2 \pi i }{\kappa}}$ deformation of their large $k$ counterparts. In the 't Hooft large $N$ limit our results reduce to standard rules with one twist: the $S$-matrix in the singlet channel is reduced by the factor $\frac{\sin \pi \lambda}{\pi \lambda} $ (where $\lambda$ is the 't Hooft coupling), explaining `anomalous' crossing properties observed in earlier direct large $N$ computations.
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来源期刊
Advances in Theoretical and Mathematical Physics
Advances in Theoretical and Mathematical Physics 物理-物理:粒子与场物理
CiteScore
2.20
自引率
6.70%
发文量
0
审稿时长
>12 weeks
期刊介绍: Advances in Theoretical and Mathematical Physics is a bimonthly publication of the International Press, publishing papers on all areas in which theoretical physics and mathematics interact with each other.
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