PaperPanorama

arXiv:2604.21332·v2·High Energy Physics — Phenomenology

Disentangling new physics with quantum entanglement in production at future lepton colliders

Masato Arai🇯🇵 · Kentarou Mawatari🇯🇵 · Nobuchika Okada🇺🇸

PDFarXivINSPIREDOI

Abstract

We investigate quantum entanglement and Bell-inequality violation in top-antitop pair production at future lepton colliders such as the International Linear Collider (ILC) and multi-TeV muon colliders. Within the Standard Model (SM), the process proceeds through -channel and exchange and exhibits characteristic spin-correlation patterns that encode a non-trivial amount of entanglement. We then examine how these features are modified in several well-motivated extensions of the SM:(i) a neutral scalar mediator that couples to charged leptons and top quarks via Yukawa interactions and contributes as an additional -channel exchange; (ii) the minimal gauged model, which introduces a new neutral gauge boson coupling vectorially to SM fermions; and (iii) a Randall-Sundrum scenario, in which the exchange of massive Kaluza-Klein gravitons arising from a warped extra dimension induces additional spin-dependent interactions. For all cases, we evaluate quantum-information observables, including the entanglement marker, the concurrence, and the maximal Clauser-Horne-Shimony-Holt parameter, and study their dependence on the center-of-mass energy, scattering angle, and model parameters. We find that, relative to the SM expectation, the entanglement is typically reduced in the scalar-mediator scenario, while sizable deviations can arise in the and Randall-Sundrum cases for phenomenologically relevant regions of parameter space. These results demonstrate the potential of quantum-information observables as sensitive probes of new particles and their interaction patterns in future lepton colliders.

Comments: 34 pages, 28 figures. Accepted for publication in Physical Review D. Three appendices have been added to provide further analysis of the characteristic entanglement patterns

Citation historyopen in Citation History ↗