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Quantum Electrodynamics in Strong and Supercritical Fields

  • S. J. Brodsky
  • P. J. Mohr
Part of the Topics in Current Physics book series (TCPHY, volume 5)

Abstract

Quantum electrodynamics (QED), the theory of the interactions of electrons and muons via photons, has now been tested both to high precision — at the ppm level — and to short distances of order 10−14 – 10−15 cm. The short distance tests, particularly the colliding beam measurements of e+e → µ+µ, rr, and e+e [2.1], are essentially tests of QED in the Born approximation. On the other hand, the precision anomalous magnetic moment and atomic physics measurements check the higher-order loop corrections and predictions dependent on the renormalization procedure. Despite the extraordinary successes, it is still important to investigate the validity of QED in the strong field domain. In particular, high-Zα atomic physics tests, especially the Lamb shift in high-Z hydrogenic atoms, test the QED amplitude in the situation where the fermion propagator is far off the mass shell and cannot be handled in perturbation theory in Zα, but where the renormalization program for perturbation theory in a must be used. High-Z heavy-ion collisions can be used to probe the Dirac spectrum in the nonperturbative domain of high Zα, where spontaneous positron production can occur, and where two different vacuum states must be considered.

Keywords

Pair Production Dirac Equation Vacuum Polarization Lamb Shift Muonic Atom 
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Copyright information

© Springer-Verlag Berlin Heidelberg 1978

Authors and Affiliations

  • S. J. Brodsky
  • P. J. Mohr

There are no affiliations available

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