Universal Approach for Quantum Interfaces with Atomic Arrays

Author:

Solomons Yakov1,Ben-Maimon Roni1,Shahmoon Ephraim1

Affiliation:

1. Department of Chemical & Biological Physics, Weizmann Institute of Science, 7610001 Rehovot, Israel

Abstract

We develop a general framework for the analysis of two-sided quantum interfaces, composed of collections of atoms interacting with paraxial light. Accounting for photon-mediated dipole-dipole interactions, our approach is based on the mapping of collective atom-photon interfaces onto a generic one-dimensional model of light scattering, characterized by a reflectivity parameter r0. This entails two key practical advantages: (i) the efficiency of the quantum interface in performing various quantum tasks, such as quantum memory or entanglement generation, is universally given by r0 and is hence reduced to a measurement or classical calculation of a reflectivity; (ii) the efficiency can be greatly enhanced by a properly designed photon mode that spatially matches a collective-dipole eigenmode of the atoms. We demonstrate our approach for realistic cases of finite-size atomic arrays, partially filled arrays, and circular arrays. This provides a unified approach for treating collective light-matter coupling in various platforms, such as optical lattices and optical tweezers. Published by the American Physical Society 2024

Funder

Israel Science Foundation

Council for Higher Education

Directorate for Defense Research and Development

QUANTERA

Publisher

American Physical Society (APS)

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