English

Quantum information with top quarks in QCD

Quantum Physics 2022-10-05 v2 High Energy Physics - Phenomenology High Energy Physics - Theory

Abstract

Top quarks represent unique high-energy systems since their spin correlations can be measured, thus allowing to study fundamental aspects of quantum mechanics with qubits at high-energy colliders. We present here the general framework of the quantum state of a top-antitop (ttˉt\bar{t}) quark pair produced through quantum chromodynamics (QCD) in a high-energy collider. We argue that, in general, the total quantum state that can be probed in a collider is given in terms of the production spin density matrix, which necessarily gives rise to a mixed state. We compute the quantum state of a ttˉt\bar{t} pair produced from the most elementary QCD processes, finding the presence of entanglement and CHSH violation in different regions of phase space. We show that any realistic hadronic production of a ttˉt\bar{t} pair is a statistical mixture of these elementary QCD processes. We focus on the experimentally relevant cases of proton-proton and proton-antiproton collisions, performed at the LHC and the Tevatron, analyzing the dependence of the quantum state with the energy of the collisions. We provide experimental observables for entanglement and CHSH-violation signatures. At the LHC, these signatures are given by the measurement of a single observable, which in the case of entanglement represents the violation of a Cauchy-Schwarz inequality. We extend the validity of the quantum tomography protocol for the ttˉt\bar{t} pair proposed in the literature to more general quantum states, and for any production mechanism. Finally, we argue that a CHSH violation measured in a collider is only a weak form of violation of Bell's theorem, necessarily containing a number of loopholes.

Keywords

Cite

@article{arxiv.2203.05582,
  title  = {Quantum information with top quarks in QCD},
  author = {Yoav Afik and Juan Ramón Muñoz de Nova},
  journal= {arXiv preprint arXiv:2203.05582},
  year   = {2022}
}

Comments

36 pages, 10 figures, 1 table. Accepted version of the manuscript

R2 v1 2026-06-24T10:09:11.148Z