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Maximal Entanglement in High Energy Physics

High Energy Physics - Theory 2017-11-27 v5 High Energy Physics - Phenomenology Quantum Physics

Abstract

We analyze how maximal entanglement is generated at the fundamental level in QED by studying correlations between helicity states in tree-level scattering processes at high energy. We demonstrate that two mechanisms for the generation of maximal entanglement are at work: i) ss-channel processes where the virtual photon carries equal overlaps of the helicities of the final state particles, and ii) the indistinguishable superposition between tt- and uu-channels. We then study whether requiring maximal entanglement constrains the coupling structure of QED and the weak interactions. In the case of photon-electron interactions unconstrained by gauge symmetry, we show how this requirement allows reproducing QED. For ZZ-mediated weak scattering, the maximal entanglement principle leads to non-trivial predictions for the value of the weak mixing angle θW\theta_W. Our results are a first step towards understanding the connections between maximal entanglement and the fundamental symmetries of high-energy physics.

Keywords

Cite

@article{arxiv.1703.02989,
  title  = {Maximal Entanglement in High Energy Physics},
  author = {Alba Cervera-Lierta and José I. Latorre and Juan Rojo and Luca Rottoli},
  journal= {arXiv preprint arXiv:1703.02989},
  year   = {2017}
}

Comments

five pages, one figure

R2 v1 2026-06-22T18:40:06.619Z