Quantum Tomography Measures Entanglement in Collider Reactions
Abstract
Entanglement in high energy and and nuclear reactions is receiving great attention. A proper description of these reactions uses density matrices, and the express of entanglement in terms of {\it separability}. Quantum tomography bypasses field-theoretic formalism to determine density matrices in terms of experimental observables. We review recent work applying quantum tomography to practical experimental data analysis. We discuss the relation between separability, as defined in quantum information science, and factorization, as defined in high energy physics. When factorization applies, it comes from using separable probes, which tomographically determine separable projections of entangled density matrices.
Cite
@article{arxiv.1910.06311,
title = {Quantum Tomography Measures Entanglement in Collider Reactions},
author = {John C. Martens and John P. Ralston and Daniel Tapia Takaki},
journal= {arXiv preprint arXiv:1910.06311},
year = {2019}
}
Comments
Talk presented at the 2019 Meeting of the Division of Particles and Fields of the American Physical Society (DPF2019), July 29-August-2, 2019, Northeastern University, Boston, C1901792