Quantum metasurfaces as probes of vacuum particle content
Germain Tobar, Joshua Foo, Sofia Qvarfort, Fabio Costa, Rivka Bekenstein, Magdalena Zych
Published: 2025/3/5
Abstract
The quantum vacuum of the electromagnetic field is inherently entangled across distinct spatial sub-regions, resulting in non-trivial particle content across these sub-regions. However, accessing this particle content in a controlled laboratory experiment has remained out of experimental reach. Here we propose to overcome this challenge with a quantum mirror made from a two-dimensional sub-wavelength array of atoms that divides a photonic cavity. The arrays response to light is tunable between transmissive and reflective states by a control atom that is excited to a Rydberg state. We find that photon content from entangled sub-regions of the vacuum causes subtle frequency shifts that are accessible to sub-wavelength atom array platforms. This novel approach for probing vacuum particle content stems from the systems unique ability to create coherent dynamics of superpositions of transmissive and reflective states, providing a quantum-enhanced platform for observing particle content from entangled spatial sub-regions of the electromagnetic field vacuum.