Mitigating Scattering in a Quantum System Using Only an Integrating Sphere

Author:

Jiang Zhenfei11ORCID,Li Tian22ORCID,Boone Matthew L.2ORCID,Yi Zhenhuan11ORCID,Sokolov Alexei V.113ORCID,Agarwal Girish S.111,Scully Marlan O.114ORCID

Affiliation:

1. Texas A&M University

2. University of Tennessee at Chattanooga

3. Baylor University

4. Princeton University

Abstract

Strong quantum correlated sources are essential but delicate resources for quantum information science and engineering protocols. Decoherence and loss are the two main disruptive processes that lead to the loss of nonclassical behavior in quantum correlations. In quantum systems, scattering can contribute to both decoherence and loss. In this work, we present an experimental scheme capable of significantly mitigating the adverse impact of scattering in quantum systems. Our quantum system is composed of a two-mode squeezed light generated with the four-wave-mixing process in hot rubidium vapor and a scatterer is introduced to one of the two modes. An integrating sphere is then placed after the scatterer to recollect the scattered photons. We use mutual information between the two modes as the measure of quantum correlations and demonstrate a 47.5% mutual information recovery from scattering, despite an enormous photon loss of greater than 85%. Our scheme is the very first step toward recovering quantum correlations from disruptive random processes and thus has the potential to bridge the gap between proof-of-principle demonstrations and practical real-world implementations of quantum protocols. Published by the American Physical Society 2024

Funder

Texas A&M Foundation

Robert A. Welch Foundation

Air Force Office of Scientific Research

National Science Foundation

U.S. Department of Energy

Office of Science

Office of Biological and Environmental Research

Publisher

American Physical Society (APS)

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