Impurities with a cusp: general theory and 3d Ising

IF 5.4 1区 物理与天体物理 Q1 Physics and Astronomy Journal of High Energy Physics Pub Date : 2024-11-08 DOI:10.1007/JHEP11(2024)061
Gabriel Cuomo, Yin-Chen He, Zohar Komargodski
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Abstract

In CFTs, the partition function of a line defect with a cusp depends logarithmically on the size of the line with an angle-dependent coefficient: the cusp anomalous dimension. In the first part of this work, we study the general properties of the cusp anomalous dimension. We relate the small cusp angle limit to the effective field theory of defect fusion, making predictions for the first couple of terms in the expansion. Using a concavity property of the cusp anomalous dimension we argue that the Casimir energy between a line defect and its orientation reversal is always negative (“opposites attract”). We use these results to determine the fusion algebra of Wilson lines in \( \mathcal{N} \) = 4 SYM as well as pinning field defects in the Wilson-Fisher fixed points. In the second part of the paper we obtain nonperturbative numerical results for the cusp anomalous dimension of pinning field defects in the Ising model in d = 3, using the recently developed fuzzy-sphere regularization. We also compute the pinning field cusp anomalous dimension in the O(N) model at one-loop in the ε-expansion. Our results are in agreement with the general theory developed in the first part of the work, and we make several predictions for impurities in magnets.

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带尖顶的杂质:一般理论和 3d 伊辛
在 CFT 中,带有尖点的线缺陷的分割函数以对数的方式取决于线的大小,并带有一个与角度相关的系数:尖点反常维度。在这项工作的第一部分,我们研究了尖顶反常维度的一般性质。我们将小尖角极限与缺陷融合的有效场理论联系起来,对扩展中的前几项进行了预测。利用尖顶反常维度的凹凸特性,我们论证了线缺陷与其取向反转之间的卡西米尔能总是负的("异性相吸")。我们用这些结果来确定 \( \mathcal{N} \) = 4 SYM 中威尔逊线的融合代数,以及威尔逊-费舍定点中的针化场缺陷。在论文的第二部分,我们利用最近开发的模糊球正则化,得到了 d = 3 的伊辛模型中针宁场缺陷的尖顶反常维度的非微扰数值结果。我们还计算了 O(N)模型中在ε-展开一回圈的针宁场尖点反常维度。我们的结果与第一部分的一般理论一致,并对磁体中的杂质做出了一些预测。
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来源期刊
Journal of High Energy Physics
Journal of High Energy Physics 物理-物理:粒子与场物理
CiteScore
10.30
自引率
46.30%
发文量
2107
审稿时长
1.5 months
期刊介绍: The aim of the Journal of High Energy Physics (JHEP) is to ensure fast and efficient online publication tools to the scientific community, while keeping that community in charge of every aspect of the peer-review and publication process in order to ensure the highest quality standards in the journal. Consequently, the Advisory and Editorial Boards, composed of distinguished, active scientists in the field, jointly establish with the Scientific Director the journal''s scientific policy and ensure the scientific quality of accepted articles. JHEP presently encompasses the following areas of theoretical and experimental physics: Collider Physics Underground and Large Array Physics Quantum Field Theory Gauge Field Theories Symmetries String and Brane Theory General Relativity and Gravitation Supersymmetry Mathematical Methods of Physics Mostly Solvable Models Astroparticles Statistical Field Theories Mostly Weak Interactions Mostly Strong Interactions Quantum Field Theory (phenomenology) Strings and Branes Phenomenological Aspects of Supersymmetry Mostly Strong Interactions (phenomenology).
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