临界环模型完全可解

IF 4.6 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY SciPost Physics Pub Date : 2024-08-01 DOI:10.21468/scipostphys.17.2.029
Rongvoram Nivesvivat, Sylvain Ribault, Jesper Lykke Jacobsen
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引用次数: 0

摘要

在二维临界环模型(包括 O(n)和波特斯模型)中,频谱是完全已知的,一些结构常数或其比率也是已知的。我们利用数值共形引导方法,研究了 235 个最简单的 4 点结构常数。对于每个结构常数,我们都找到了两个因子乘积的解析表达式:1)共形维度的通用函数,由巴恩斯的双伽马函数建立;2)环路权重的多项式函数,其阶数服从一个简单的上限。我们猜想所有结构常数都是这种形式。对于一些 4 点函数,我们在晶格环模型中建立了相应的观测值。从晶格数值结果中,我们提取了既不依赖于晶格大小也不依赖于晶格耦合的振幅比。这些比率与 4 点结构常数的相应比率一致。
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Critical loop models are exactly solvable
In two-dimensional critical loop models, including the O(n) and Potts models, the spectrum is exactly known, as are a few structure constants or ratios thereof. Using numerical conformal bootstrap methods, we study 235 of the simplest 4-point structure constants. For each structure constant, we find an analytic expression as a product of two factors: 1) a universal function of conformal dimensions, built from Barnes' double Gamma function, and 2) a polynomial function of loop weights, whose degree obeys a simple upper bound. We conjecture that all structure constants are of this form. For a few 4-point functions, we build corresponding observables in a lattice loop model. From numerical lattice results, we extract amplitude ratios that depend neither on the lattice size nor on the lattice coupling. These ratios agree with the corresponding ratios of 4-point structure constants.
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来源期刊
SciPost Physics
SciPost Physics Physics and Astronomy-Physics and Astronomy (all)
CiteScore
8.20
自引率
12.70%
发文量
315
审稿时长
10 weeks
期刊介绍: SciPost Physics publishes breakthrough research articles in the whole field of Physics, covering Experimental, Theoretical and Computational approaches. Specialties covered by this Journal: - Atomic, Molecular and Optical Physics - Experiment - Atomic, Molecular and Optical Physics - Theory - Biophysics - Condensed Matter Physics - Experiment - Condensed Matter Physics - Theory - Condensed Matter Physics - Computational - Fluid Dynamics - Gravitation, Cosmology and Astroparticle Physics - High-Energy Physics - Experiment - High-Energy Physics - Theory - High-Energy Physics - Phenomenology - Mathematical Physics - Nuclear Physics - Experiment - Nuclear Physics - Theory - Quantum Physics - Statistical and Soft Matter Physics.
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