Ultimate Quantum Precision Limit at Colliders: Conditions and Case Studies
arXiv:2506.10673 · doi:10.1103/3m4t-pk9b
Abstract
We investigate whether collider experiments can reach the quantum limit of precision, defined by the quantum Fisher information (QFI), using only classical observables such as particle momenta. As a case study, we focus on the system and the decay channel , which offers maximal spin-analyzing power and renders the decay a projective measurement. We develop a general framework to determine when collider measurements can, in principle, saturate the QFI in an entangled biparticle system, and this framework extends naturally to other such systems. Within this framework, QFI saturation occurs if and only if the symmetric logarithmic derivative (SLD) commutes with a complete set of orthonormal separable projectors associated with collider-accessible measurements. This separability condition, reflecting the independence of decay amplitudes, is highly nontrivial. To meet this condition, a key requirement is that the spin density matrix be rank-deficient, allowing the SLD sufficient freedom. We show that the classical Fisher information asymptotically saturates the QFI for magnetic dipole moments and CP-violating Higgs interactions in selected phase-space regions, but not for electric dipole moments. These results bridge quantum metrology and collider physics, providing a systematic method to identify quantum-optimal sensitivity in collider experiments.
19 pages, 2 figures, 2 tables; v2: Appendix B added, matched to the published version
References in corpus (33)
- Quantum metrology from a quantum information science perspective
- Quantum Fisher information matrix and multiparameter estimation
- The Belle II Physics Book
- A Precision Measurement of the Mass of the Top Quark
- A framework for Higgs characterisation
- A Geometric Perspective on Quantum Parameter Estimation
- Entanglement and quantum tomography with top quarks at the LHC
- Quantum metrology for a general Hamiltonian parameter
- Search for the Electric Dipole Moment of the tau Lepton
- Simple expression for the quantum Fisher information matrix
- Quantum discord and steering in top quarks at the LHC
- Constraining new physics in entangled two-qubit systems: top-quark, tau-lepton and photon pairs
- Quantum state tomography, entanglement detection and Bell violation prospects in weak decays of massive particles
- A set of top quark spin correlation and polarization observables for the LHC: Standard Model predictions and new physics contributions
- Quantum information and CP measurement in at future lepton colliders
- Nonlocal Correlation of Spin in High Energy Physics
- A Search for the Electric Dipole Moment of the Tau-Lepton
- Observation of the process in Pb+Pb collisions and constraints on the -lepton anomalous magnetic moment with the ATLAS detector
- Entangled baryons: violation of Inequalities based on local realism assuming dependence of decays on hidden variables
- Test of Nonlocal Hidden Variable Theory by Leggett Inequality in High Energy Physics
- Observation of in proton-proton collisions and limits on the anomalous electromagnetic moments of the lepton
- Constraining CP-violation in the Higgs-top-quark interaction using machine-learning-based inference
- Optimizing Fictitious States for Bell Inequality Violation in Bipartite Qubit Systems
- Observation of lepton pair production in ultraperipheral lead-lead collisions at = 5.02 TeV
- An improved search for the electric dipole moment of the lepton
- Optimizing Entanglement and Bell Inequality Violation in Top Anti-Top Events
- Quantum tomography with leptons at the FCC-ee
- Measurement of the properties of Higgs boson interactions with -leptons with the ATLAS detector
- Practical Statistics for the LHC
- Radiative Decays of the Higgs Boson to a Pair of Fermions
- Interference Resurrection of the Dipole through Quantum Tomography
- Entropic uncertainty relations and quantum Fisher information of top quarks in a large hadron collider
- Test of local realism via entangled system