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Complete inelastic transparency of time-modulated resonant photonic circuits

Research output: Contribution to journalArticlepeer-review

Abstract

Photonic circuits modulated in time can convert the input light frequency ω 0 , shifting it by multiples of the modulation frequency ω p and, in certain cases, amplify the total input light power. Of special interest are photonic circuits employing microwave capacitors, which modulate photonic waveguides with frequency ω p ≪ ω 0 . While the amplification of light is negligible in such circuits, ideally, frequency conversion can be completed with the conservation of the light amplitude. Therefore, similar to the elastically transparent photonic structures (i.e., structures conserving both the light amplitude and frequency), we can say that a photonic circuit parametrically modulated in time exhibits if a wave enters the structure with frequency ω 0 and exits it with a different frequency and the same amplitude. Here, we develop an approach that allows us to introduce and investigate a broad class of time-modulated photonic circuits exhibiting complete inelastic transparency. Light enters these circuits with a resonant frequency ω 0 , cascades between their eigenstates separated by the modulation frequency ω p , and exits with frequency ω 0 + ( N − 1 ) ω p and the output amplitude close to the input amplitude. As examples, we consider circuits of ring microresonators and surface nanoscale axial photonics (SNAP) microresonators.
Original languageEnglish
Article number023299
Number of pages43
JournalPhysical Review Research
Volume8
Issue number2
Early online date15 Jun 2026
DOIs
Publication statusE-pub ahead of print - 15 Jun 2026

Bibliographical note

Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article’s title, journal citation, and DOI: https://doi.org/10.1103/wdpy-jxm9

Data Access Statement

The data that support the findings of this article are not publicly available. The data are available from the authors upon reasonable request.

Funding

This research was supported by the Engineering and Physical Sciences Research Council (EPSRC) Grants No. EP/W002868/1 and No. EP/X03772X/1 and by the Leverhulme Trust Grant No. RPG-2022-014.

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