Quantum Sensors for High Energy Physics
Abstract
Strong motivation for investing in quantum sensing arises from the need to investigate phenomena that are very weakly coupled to the matter and fields well described by the Standard Model. These can be related to the problems of dark matter, dark sectors not necessarily related to dark matter (for example sterile neutrinos), dark energy and gravity, fundamental constants, and problems with the Standard Model itself including the Strong CP problem in QCD. Resulting experimental needs typically involve the measurement of very low energy impulses or low power periodic signals that are normally buried under large backgrounds. This report documents the findings of the 2023 Quantum Sensors for High Energy Physics workshop which identified enabling quantum information science technologies that could be utilized in future particle physics experiments, targeting high energy physics science goals.
Cite
@article{arxiv.2311.01930,
title = {Quantum Sensors for High Energy Physics},
author = {Aaron Chou and Kent Irwin and Reina H. Maruyama and Oliver K. Baker and Chelsea Bartram and Karl K. Berggren and Gustavo Cancelo and Daniel Carney and Clarence L. Chang and Hsiao-Mei Cho and Maurice Garcia-Sciveres and Peter W. Graham and Salman Habib and Roni Harnik and J. G. E. Harris and Scott A. Hertel and David B. Hume and Rakshya Khatiwada and Timothy L. Kovachy and Noah Kurinsky and Steve K. Lamoreaux and Konrad W. Lehnert and David R. Leibrandt and Dale Li and Ben Loer and Julián Martínez-Rincón and Lee McCuller and David C. Moore and Holger Mueller and Cristian Pena and Raphael C. Pooser and Matt Pyle and Surjeet Rajendran and Marianna S. Safronova and David I. Schuster and Matthew D. Shaw and Maria Spiropulu and Paul Stankus and Alexander O. Sushkov and Lindley Winslow and Si Xie and Kathryn M. Zurek},
journal= {arXiv preprint arXiv:2311.01930},
year = {2023}
}
Comments
63 pages, 8 figures, Quantum Sensors for HEP workshop report, April 26-28, 2023