Confinement & Chiral Symmetry Breaking: The fundamental problems of hadron physics
arXiv:0907.5318 · doi:10.1016/j.nuclphysbps.2009.10.018
Abstract
Some of the difficulties arising when one tries to understand confinement as well as dynamical and anomalous chiral symmetry breaking are reviewed. Criteria to be fulfilled by a successful and complete picture of these phenomena are presented, and a few of the suggested explanations are listed.
6 pages, 1 figure; to appear in the proceedings of the 47th Schladming Winter School "Fundamental Challenges of QCD"
References in corpus (10)
- Equation of state and QCD transition at finite temperature
- Gluon and ghost propagators in the Landau gauge: Deriving lattice results from Schwinger-Dyson equations
- Infrared Properties of QCD from Dyson-Schwinger equations
- The quark-gluon vertex in Landau gauge QCD: Its role in dynamical chiral symmetry breaking and quark confinement
- Dual quark condensate and dressed Polyakov loops
- Linking confinement to spectral properties of the Dirac operator
- The Landau gauge gluon and ghost propagator in the refined Gribov-Zwanziger framework in 3 dimensions
- Quark Confinement: The Hard Problem of Hadron Physics
- U_A(1) anomaly and eta' mass from an infrared singular quark-gluon vertex
- Fermionic boundary conditions and the finite temperature transition of QCD