Quantum vacuum phenomena in various backgrounds

被引:1
作者
Flachi, Antonino [1 ]
机构
[1] Keio Univ, Phys Dept, Hiyoshi 1-1-4, Yokohama, Kanagawa, Japan
来源
INTERNATIONAL JOURNAL OF MODERN PHYSICS A | 2022年 / 37卷 / 19期
关键词
Quantum vacuum; Casimir effect; symmetry breaking; DYNAMICAL SYMMETRY-BREAKING; ZERO-POINT ENERGY; SELF-INTERACTION; MASS GENERATION; CASIMIR; MODEL; FIELDS;
D O I
10.1142/S0217751X22410081
中图分类号
O57 [原子核物理学、高能物理学];
学科分类号
070202 ;
摘要
In this paper, we will review, through various examples, some ideas connecting the physics of the quantum vacuum and the Casimir effect with the mechanism of symmetry breaking in different backgrounds. In the first example, we will discuss how the quantum vacuum energy is altered by the presence of nonlinearities in the underlying quantum field theory in a way that depends on the spatial dimensionality, as dictated by the Mermin-Wagner-Hohenberg-Coleman theorem. In the second example, we will explore how the combination of boundary effects and (discrete) chiral symmetry breaking can affect the thermodynamical behavior of a system of interacting fermions, and how this is reflected on the Casimir force. Even in the simplest setup of two parallel plates, two interesting things happen: first, the order of the transition through which discrete chiral symmetry may be broken/restored changes from second-order for infinitely large separation to first-order for a finite separation between the boundaries. Second, a peculiar behavior in the fermion condensate occurs, resulting in the appearance of two different phases (massless and massive) in the Casimir force. In the third example, we will also be concerned with the Casimir effect on an interacting fermion background over a string of finite length. Using a self-consistent method, we will show how a nontrivial behavior in the Casimir force arises, displaying a switch from an attractive to a repulsive regime, as a result of the competing effects due to the usual attractive Casimir force and a repulsive component coming from the condensate.
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页数:25
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共 86 条
[1]  
[Anonymous], 1927, A Course of Modern Analysis, DOI [10.1017/CBO9780511608759, DOI 10.1017/CBO9780511608759]
[2]   Attractive and repulsive Casimir vacuum energy with general boundary conditions [J].
Asorey, M. ;
Munoz-Castaneda, J. M. .
NUCLEAR PHYSICS B, 2013, 874 (03) :852-876
[3]  
Avramidi I. G., 2000, Heat Kernel and Quantum Gravity, V64
[4]   Comment on the sign of the Casimir force [J].
Bachas, C. P. .
JOURNAL OF PHYSICS A-MATHEMATICAL AND THEORETICAL, 2007, 40 (30) :9089-9096
[5]   Self-consistent crystalline condensate in chiral Gross-Neveu and Bogoliubov-de Gennes systems [J].
Basar, Goekce ;
Dunne, Gerald V. .
PHYSICAL REVIEW LETTERS, 2008, 100 (20)
[6]   The Casimir effect for fermionic currents in conical rings with applications to graphene ribbons [J].
Bellucci, S. ;
Brevik, I ;
Saharian, A. A. ;
Sargsyan, H. G. .
EUROPEAN PHYSICAL JOURNAL C, 2020, 80 (03)
[7]  
Bordag M., 2009, Advances in the Casimir Effect
[8]   Vacuum Energy for a Scalar Field with Self-Interaction in (1 [J].
Bordag, Michael .
UNIVERSE, 2021, 7 (03)
[9]   QUANTUM ELECTROMAGNETIC ZERO-POINT ENERGY OF A CONDUCTING SPHERICAL SHELL AND CASIMIR MODEL FOR A CHARGED PARTICLE [J].
BOYER, TH .
PHYSICAL REVIEW, 1968, 174 (05) :1764-&
[10]   Casimir interaction among objects immersed in a fermionic environment [J].
Bulgac, A ;
Wirzba, A .
PHYSICAL REVIEW LETTERS, 2001, 87 (12) :120404/1-120404/4