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Towards timetronics with photonic systems

Ali Emami Kopaei1,2,*, Karthik Subramaniam Eswaran1,2, Arkadiusz Kosior3, Daniel Hodgson4, Andrey Matsko5, Hossein Taheri6, Almut Beige4, and Krzysztof Sacha2,7,†

  • 1Szkoła Doktorska Nauk Ścisłych i Przyrodniczych, Wydział Fizyki, Astronomii i Informatyki Stosowanej, Uniwersytet Jagielloński, ulica Profesora Stanisława Łojasiewicza 11, PL-30-348 Kraków, Poland
  • 2Instytut Fizyki Teoretycznej, Wydział Fizyki, Astronomii i Informatyki Stosowanej, Uniwersytet Jagielloński, ulica Profesora Stanisława Łojasiewicza 11, PL-30-348 Kraków, Poland
  • 3Institut für Theoretische Physik, Universität Innsbruck, A-6020 Innsbruck, Austria
  • 4School of Physics and Astronomy, University of Leeds, Leeds LS2 9JT, United Kingdom
  • 5Jet Propulsion Laboratory, California Institute of Technology, 4800 Oak Grove Drive, Pasadena, California 91109-8099, USA
  • 6Department of Electrical and Computer Engineering, University of California Riverside, 3401 Watkins Drive, Riverside, California 92521, USA
  • 7Centrum Marka Kaca, Uniwersytet Jagielloński, ulica Profesora Stanisława Łojasiewicza 11, PL-30-348 Kraków, Poland

  • *Contact author: ali.emami.app@gmail.com
  • †Contact author: krzysztof.sacha@uj.edu.pl

Phys. Rev. A 113, L011501 – Published 2 January, 2026

DOI: https://doi.org/10.1103/w8fb-j1sc

Abstract

Periodic driving of particles can create crystalline structures in their dynamics. Such systems can be used to study solid-state physics phenomena in the time domain. In addition, it is possible to realize photonic time crystals and to engineer the wave-number band structure of optical devices by periodic temporal modulation of the properties of light-propagating media. Here, we introduce a versatile approach which uses traveling-wave resonators to emulate various condensed matter phases in the time dimension. This is achieved by utilizing temporal modulation of the permittivity and the shape of small segments of the resonators. The required frequency and depth of the modulation are experimentally achievable which opens a pathway for the practical realization of crystalline structures in time in microwave and in optical systems.

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