Critical Number of Flavours in QED
arXiv:1101.5458 · doi:10.1103/PhysRevD.83.033003
Abstract
We demonstrate that in unquenched quantum electrodynamics (QED), chiral symmetry breaking ceases to exist above a critical number of fermion flavours . This is a necessary and sufficient consequence of the fact that there exists a critical value of electromagnetic coupling beyond which dynamical mass generation gets triggered. We employ a multiplicatively renormalizable photon propagator involving leading logarithms to all orders in to illustrate this. We study the flavour and coupling dependence of the dynamically generated mass analytically as well as numerically. We also derive the scaling laws for the dynamical mass as a function of and . Up to a multiplicative constant, these scaling laws are related through . Calculation of the mass anomalous dimension shows that it is always greater than its value in the quenched case. We also evaluate the -function. The criticality plane is drawn in the phase space which clearly depicts how larger is required to restore chiral symmetry for an increasing interaction strength.
5 pages, 5 figures
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