
TL;DR
This paper introduces Dyson-Schwinger equations as a powerful tool to understand key non-perturbative phenomena in QCD, such as confinement and dynamical chiral symmetry breaking, which are crucial for explaining observable properties of matter.
Contribution
It provides an accessible introduction to Dyson-Schwinger equations and demonstrates their application in predicting observable phenomena in QCD and hadron physics.
Findings
Progress in explaining dynamical chiral symmetry breaking
Use of DSEs to predict hadron properties
Insights into confinement mechanisms
Abstract
The real-world properties of quantum chromodynamics (QCD) - the strongly-interacting piece of the Standard Model - are dominated by two emergent phenomena: confinement; namely, the theory's elementary degrees-of-freedom - quarks and gluons - have never been detected in isolation; and dynamical chiral symmetry breaking (DCSB), which is a remarkably effective mass generating mechanism, responsible for the mass of more than 98% of visible matter in the Universe. These phenomena are not apparent in the formulae that define QCD, yet they play a principal role in determining Nature's observable characteristics. Much remains to be learnt before confinement can properly be understood. On the other hand,the last decade has seen important progress in the use of relativistic quantum field theory, so that we can now explain the origin of DCSB and are beginning to demonstrate its far-reaching…
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