High-Q microresonators unveil quantum rare events

Fuente: arXiv
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Main Authors: Raghavan-Chitra, Sricharan, Koner, Arghadip, Yuen-Zhou, Joel
Format: Preprint
Published: 2025
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author Raghavan-Chitra, Sricharan
Koner, Arghadip
Yuen-Zhou, Joel
author_facet Raghavan-Chitra, Sricharan
Koner, Arghadip
Yuen-Zhou, Joel
contents Classical linear optics posits that at sufficiently low intensities, light propagation in dielectric media is governed solely by their linear susceptibilities. Here, we demonstrate a departure from this paradigm in high-Q microresonators, where prolonged photon confinement enables rare quantum electrodynamical (QED) events, mediated by the quantum vacuum, to embed distinctive Raman signatures of the coupled analyte into the resonator's linear transmission spectrum despite their absence from the linear susceptibility. We further show that increasing the amount of adsorbed analyte amplifies these Raman fingerprints well above typical noise floors, rendering them experimentally accessible with state-of-the-art photonic architectures and detection schemes. This novel weak-coupling cavity-QED effect offers unique routes to harness extended photon lifetimes and constrained geometries for leveraging vacuum fluctuations in next-generation photonic technologies for chemical and biological sensing and high-precision optical spectroscopy.
format Preprint
id arxiv_https___arxiv_org_abs_2510_27034
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle High-Q microresonators unveil quantum rare events
Raghavan-Chitra, Sricharan
Koner, Arghadip
Yuen-Zhou, Joel
Optics
Quantum Physics
Classical linear optics posits that at sufficiently low intensities, light propagation in dielectric media is governed solely by their linear susceptibilities. Here, we demonstrate a departure from this paradigm in high-Q microresonators, where prolonged photon confinement enables rare quantum electrodynamical (QED) events, mediated by the quantum vacuum, to embed distinctive Raman signatures of the coupled analyte into the resonator's linear transmission spectrum despite their absence from the linear susceptibility. We further show that increasing the amount of adsorbed analyte amplifies these Raman fingerprints well above typical noise floors, rendering them experimentally accessible with state-of-the-art photonic architectures and detection schemes. This novel weak-coupling cavity-QED effect offers unique routes to harness extended photon lifetimes and constrained geometries for leveraging vacuum fluctuations in next-generation photonic technologies for chemical and biological sensing and high-precision optical spectroscopy.
title High-Q microresonators unveil quantum rare events
topic Optics
Quantum Physics
url https://arxiv.org/abs/2510.27034