arXiv · hep-th/0003105
Disentangling Intertwined Embedded States and Spin Effects in Light-Front Quantization
Abstract
Naive light-front quantization, carried out by a light-front energy integration of covariant amplitudes, is not guaranteed to generate the corresponding Feynman amplitudes. In an explicit example we show that the nonvalence contribution to the minus-component of the EM current of a meson with fermion constituents has a persistent end-point singularity. Only after this term is subtracted, the result is covariant and satisfies current conservation. If the spin-1/2 constituents are replaced by spin zero ones, the singularity does not occur and the result is, without any adjustment, identical to the Feynman amplitude. Numerical estimates of valence and nonvalence contributions are presented for the cases of fermion and boson constituents.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
B. L. G. Bakker, Chueng-Ryong Ji. 2000-03-14. Disentangling Intertwined Embedded States and Spin Effects in Light-Front Quantization. https://doi.org/10.1103/physrevd.62.074014
Cite the original work for its findings. Save a collection to share your selection of sources.