Covariant analysis of electromagnetic current on the light cone: exposition with scalar Yukawa theory
Wenyu Zhang, Yang Li, James P. Vary

TL;DR
This paper investigates the Lorentz covariance of the electromagnetic charge form factor in a strongly coupled scalar Yukawa theory using a non-perturbative Fock sector approach, revealing how Fock sector inclusion affects frame dependence.
Contribution
It provides the first non-perturbative solution of scalar Yukawa theory with a Fock sector expansion up to three particles, analyzing Lorentz covariance and frame dependence of form factors.
Findings
Frame dependence decreases with more Fock sectors included.
Anti-nucleon degrees of freedom significantly reduce frame dependence.
No zero-mode contribution to the current in scalar Yukawa theory.
Abstract
We present the first systematic investigation of the Lorentz covariance of the charge form factor for a strongly coupled scalar theory in (3+1)-dimensions. Our results are based on the first non-perturbative solution of the scalar Yukawa theory with a Fock sector expansion including up to thee-particles (one mock nucleon plus two mock pions or two mock nucleons plus one mock anti-nucleon). The light-front Hamiltonian is constructed and renormalized using a Fock sector dependent scheme. The derived eigenvalue equation is then solved non-perturbatively to obtain the wave functions, which are then used to compute the current matrix element. We perform a covariant analysis of the current matrix element taking into account possible violation of the Poincar\'e symmetry due to the Fock sector truncation. The physical form factor depends on two boost invariants ,…
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Taxonomy
TopicsInfrared Target Detection Methodologies · Geophysics and Sensor Technology · Thermography and Photoacoustic Techniques
