Automatic regularization by quantization in reducible representations of CCR: Point-form quantum optics with classical sources
Marek Czachor, Klaudia Wrzask

TL;DR
This paper introduces a covariant quantization method for electromagnetic fields using reducible CCR representations, leading to automatic regularization and novel photon statistics, with applications to classical sources and vacuum polarization.
Contribution
It develops a new covariant quantization framework with reducible CCR representations, enabling automatic regularization and a detailed analysis of photon statistics and vacuum effects.
Findings
Photon statistics follow a Rénnyi distribution with parameter depending on oscillator number N.
UV/IR regularizations occur naturally within the formalism.
Classical Maxwell fields are reconstructed from quantum coherent states.
Abstract
Electromagnetic fields are quantized in manifestly covariant way by means of a class of reducible representations of CCR. transforms as a Hermitian four-vector field in Minkowski four-position space (no change of gauge), but in momentum space it splits into spin-1 massless photons (optics) and two massless scalars (similar to dark matter). Unitary dynamics is given by point-form interaction picture, with minimal-coupling Hamiltonian constructed from fields that are free on the null-cone boundary of the Milne universe. SL(2,C) transformations and dynamics are represented unitarily in positive-norm Hilbert space describing four-dimensional oscillators. Vacuum is a Bose-Einstein condensate of the -oscillator gas. Both the form of and its transformation properties are determined by an analogue of the twistor equation. The same equation guarantees that the subspace…
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