4.4 Article

Discreteness and integrality in Conformal Field Theory

期刊

JOURNAL OF HIGH ENERGY PHYSICS
卷 -, 期 2, 页码 -

出版社

SPRINGER
DOI: 10.1007/JHEP02(2021)064

关键词

Conformal Field Theory; AdS-CFT Correspondence

资金

  1. Simons Foundation [488657]
  2. U.S. Department of Energy, Office of Science, Office of High Energy Physics [DE-SC0011632]

向作者/读者索取更多资源

In this study, constraints of positivity, discreteness, and integrality on observables in compact CFTs are systematically investigated. The results yield bootstrap-type bounds on OPE data, insights into spectral determinacy, and discussions on implications for black hole physics and the uniqueness of a possible ensemble interpretation of AdS(3) gravity.
Various observables in compact CFTs are required to obey positivity, discreteness, and integrality. Positivity forms the crux of the conformal bootstrap, but understanding of the abstract implications of discreteness and integrality for the space of CFTs is lacking. We systematically study these constraints in two-dimensional, non-holomorphic CFTs, making use of two main mathematical results. First, we prove a theorem constraining the behavior near the cusp of integral, vector-valued modular functions. Second, we explicitly construct non-factorizable, non-holomorphic cuspidal functions satisfying discreteness and integrality, and prove the non-existence of such functions once positivity is added. Application of these results yields several bootstrap-type bounds on OPE data of both rational and irrational CFTs, including some powerful bounds for theories with conformal manifolds, as well as insights into questions of spectral determinacy. We prove that in rational CFT, the spectrum of operator twists t >= c12 is uniquely determined by its complement. Likewise, we argue that in generic CFTs, the spectrum of operator dimensions Delta>c-112 is uniquely determined by its complement, absent fine-tuning in a sense we articulate. Finally, we discuss implications for black hole physics and the (non-)uniqueness of a possible ensemble interpretation of AdS(3) gravity.

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