Nonperturbative Casimir Effects in Field Theories:aspects of confinement, dynamical mass generationand chiral symmetry breaking

M. Chernodub, V. Goy, A. Molochkov
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引用次数: 12

Abstract

The Casimir effect is a quantum phenomenon rooted in the fact that vacuum fluctuations of quantum fields are affected by the presence of physical objects and boundaries. Since the energy spectrum of the vacuum fluctuations depends on distances between (and geometries of) physical bodies, the quantum vacuum exerts a small but experimentally detectable force on neutral objects. Usually, the associated Casimir energy is calculated for free or weakly coupled quantum fields. We review recent studies of the Casimir effect in field-theoretical models which mimic features of non-perturbative QCD such as chiral or deconfining phase transitions. We discuss ${{\mathbb C}P}^{\,N-1}$ sigma model and chiral Gross-Neveu model in (1+1) dimensions as well as compact U(1) gauge theory and Yang-Mills theory in (2+1) dimensions.
场论中的非微扰卡西米尔效应:约束、动态质量产生和手性对称性破缺
卡西米尔效应是一种量子现象,其根源在于量子场的真空涨落受到物理物体和边界存在的影响。由于真空波动的能谱取决于物理物体之间的距离(和几何形状),量子真空对中性物体施加很小但实验上可检测到的力。通常,相关的卡西米尔能量是计算自由或弱耦合量子场。我们回顾了场理论模型中卡西米尔效应的最新研究,这些模型模拟了非微扰QCD的特征,如手性或定义相变。讨论了(1+1)维上的${{\mathbb C}P}^{\,N-1}$ sigma模型和手性Gross-Neveu模型以及(2+1)维上的紧U(1)规范理论和Yang-Mills理论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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