Nonlocal Advantage of Quantum Coherence in Top Quarks
arXiv:2505.12004 · doi:10.1103/dvqh-ytbk
Abstract
There is a growing interest in investigating top-quark systems using tools from quantum information theory. A key peculiarity of the top quark is that it decays before hadronization or spin decorrelation occurs, thereby preserving its spin information. This unique property enables direct access to spin correlations, making the top quark an ideal candidate for probing fundamental quantum correlations in high-energy physics processes. A wide range of concepts from quantum information theory, such as entanglement, Bell nonlocality, quantum steering, quantum discord, and fidelity, have been investigated in this context. Several of these measures have been employed as diagnostic tools to test the Standard Model and to search for possible signatures of physics beyond. However, the \textit{nonlocal advantage of quantum coherence} (NAQC) has remained largely unexplored in this context. In this work, we present a detailed investigation of the NAQC in top quark pair production. We employ two complementary NAQC measures based on the -norm and the relative entropy of coherence. We also study the effect of angular averaging on these measures and assess the sensitivity of current LHC spin-correlation measurements to NAQC. Our findings reveal rich coherence structures and highlight NAQC as potentially a novel and complementary quantum signature in high-energy physics systems.
References in corpus (13)
- Quantum information with top quarks in QCD
- Observation of quantum entanglement in top-quark pairs using the ATLAS detector
- Quantum discord and steering in top quarks at the LHC
- Measurement of Spin Correlation in Top-Antitop Quark Events and Search for Top Squark Pair Production in pp Collisions at TeV Using the ATLAS Detector
- Constraining new physics in entangled two-qubit systems: top-quark, tau-lepton and photon pairs
- Quantum entanglement and top spin correlations in SMEFT at higher orders
- When the Machine Chimes the Bell: Entanglement and Bell Inequalities with Boosted
- Measurements of spin correlation in top-antitop quark events from proton-proton collisions at TeV using the ATLAS detector
- Measurements of polarization and spin correlation and observation of entanglement in top quark pairs using lepton+jets events from proton-proton collisions at = 13 TeV
- Quantum tops at circular lepton colliders
- Optimizing Fictitious States for Bell Inequality Violation in Bipartite Qubit Systems
- Optimizing Entanglement and Bell Inequality Violation in Top Anti-Top Events
- Entropic uncertainty relations and quantum Fisher information of top quarks in a large hadron collider