On higher-dimensional Carrollian and Galilean conformal field theories

Author:

Chen Bin12,Liu Reiko2,Zheng Yu-fan2

Affiliation:

1. Collaborative Innovation Center of Quantum Matter

2. Peking University

Abstract

In this paper, we study the Carrollian and Galilean conformal field theories (CCFT and GCFT) in d>2d>2 dimensions. We construct the highest weight representations (HWR) of Carrollian and Galilean conformal algebra (CCA and GCA). Even though the two algebras have different structures, their HWRs share similar structure, because their rotation subalgebras are isomorphic. In both cases, we find that the finite dimensional representations are generally reducible but indecomposable, and can be organized into the multiplets. Moreover, it turns out that the multiplet representations in d>2d>2 CCA and GCA carry not only the simple chain structure appeared in logCFT or 2d2d GCFT, but also more generally the net structures. We manage to classify all the allowed chain representations. Furthermore we discuss the two-point and three-point correlators by using the Ward identities. We mainly focus on the two-point correlators of the operators in chain representations. Even in this relative simple case, we find some novel features: multiple-level structure, shortage of the selection rule on the representations, undetermined 2-pt coefficients, etc.. We find that the non-trivial correlators could only appear for the representations of certain structure, and the correlators are generally polynomials of time coordinates for CCFT (spacial coordinates for GCFT), whose orders depend on the levels of the correlators.

Funder

National Natural Science Foundation of China

Publisher

Stichting SciPost

Subject

General Physics and Astronomy

Cited by 16 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

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3. Chern-Simons action and the Carrollian Cotton tensors;Journal of High Energy Physics;2023-12-19

4. Constructing Carrollian field theories from null reduction;Journal of High Energy Physics;2023-11-24

5. One-loop quantum effects in Carroll scalars;Physical Review D;2023-10-26

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