Massless bound-state excitations and the Schwinger mechanism in QCD

被引:52
作者
Aguilar, A. C. [1 ]
Ibanez, D. [2 ,3 ]
Mathieu, V. [2 ,3 ]
Papavassiliou, J. [2 ,3 ]
机构
[1] Fed Univ ABC, CCNH, BR-09210170 Santo Andre, Brazil
[2] Univ Valencia CSIC, Dept Theoret Phys, E-46100 Valencia, Spain
[3] Univ Valencia CSIC, IFIC, E-46100 Valencia, Spain
来源
PHYSICAL REVIEW D | 2012年 / 85卷 / 01期
关键词
BACKGROUND FIELD METHOD; SYMMETRY-BREAKING; INFRARED BEHAVIOR; GAUGE-INVARIANCE; PINCH TECHNIQUE; VERTEX;
D O I
10.1103/PhysRevD.85.014018
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The gauge-invariant generation of an effective gluon mass proceeds through the well-known Schwinger mechanism, whose key dynamical ingredient is the nonperturbative formation of longitudinally coupled massless bound-state excitations. These excitations introduce poles in the vertices of the theory, in such a way as to maintain the Slavnov-Taylor identities intact in the presence of massive gluon propagators. In the present work we first focus on the modifications induced to the nonperturbative three-gluon vertex by the inclusion of massless two-gluon bound states into the kernels appearing in its skeleton expansion. Certain general relations between the basic building blocks of these bound states and the gluon mass are then obtained from the Slavnov-Taylor identities and the Schwinger-Dyson equation governing the gluon propagator. The homogeneous Bethe-Salpeter equation determining the wave function of the aforementioned bound state is then derived, under certain simplifying assumptions. It is then shown, through a detailed analytical and numerical study, that this equation admits nontrivial solutions, indicating that the QCD dynamics support indeed the formation of such massless bound states. These solutions are subsequently used, in conjunction with the aforementioned relations, to determine the momentumdependence of the dynamical gluon mass. Finally, further possibilities and open questions are briefly discussed.
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页数:21
相关论文
共 59 条
[1]   THE BACKGROUND FIELD METHOD BEYOND ONE LOOP [J].
ABBOTT, LF .
NUCLEAR PHYSICS B, 1981, 185 (01) :189-203
[2]   Dynamical equation of the effective gluon mass [J].
Aguilar, A. C. ;
Binosi, D. ;
Papavassiliou, J. .
PHYSICAL REVIEW D, 2011, 84 (08)
[3]   Nonperturbative comparison of QCD effective charges [J].
Aguilar, A. C. ;
Binosi, D. ;
Papavassiliou, J. ;
Rodriguez-Quintero, J. .
PHYSICAL REVIEW D, 2009, 80 (08)
[4]   Gluon and ghost propagators in the Landau gauge: Deriving lattice results from Schwinger-Dyson equations [J].
Aguilar, A. C. ;
Binosi, D. ;
Papavassiliou, J. .
PHYSICAL REVIEW D, 2008, 78 (02)
[5]   Relating a gluon mass scale to an infrared fixed point in pure gauge QCD [J].
Aguilar, AC ;
Natale, AA ;
da Silva, PSR .
PHYSICAL REVIEW LETTERS, 2003, 90 (15) :4
[6]  
Aguilar AC, 2006, J HIGH ENERGY PHYS
[7]   Gluon mass generation without seagull divergences [J].
Aguilar, Arlene C. ;
Papavassiliou, Joannis .
PHYSICAL REVIEW D, 2010, 81 (03)
[8]   Lorentz-violating alternative to the Higgs mechanism? [J].
Alexandre, Jean ;
Mavromatos, Nick E. .
PHYSICAL REVIEW D, 2011, 84 (10)
[9]  
BALL JS, 1980, PHYS REV D, V22, P2550, DOI 10.1103/PhysRevD.22.2550
[10]   CORRECTION [J].
BALL, JS .
PHYSICAL REVIEW D, 1981, 23 (12) :3085-3085