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Transition Radiation in Photonic Topological Crystals: Quasiresonant Excitation of Robust Edge States by a Moving Charge. | LitMetric

AI Article Synopsis

  • The research investigates how an electric charge moving between two photonic crystals produces edge waves, which are electromagnetic modes localized at the interface, through a phenomenon called transition edge-wave radiation (TER).
  • A new formula for calculating the spectral density of TER is derived and demonstrated using a setup involving two photonic topological insulators with opposite spin-Chern indices, showing that TER can break time-reversal symmetry.
  • Experiments at the Argonne Wakefield Accelerator Facility support the idea that TER allows for the generation of topologically protected edge waves that can travel directionally along the interface, suggesting potential advancements in particle accelerators and detectors.

Article Abstract

We demonstrate, theoretically and experimentally, that a traveling electric charge passing from one photonic crystal into another generates edge waves-electromagnetic modes with frequencies inside the common photonic band gap localized at the interface-via a process of transition edge-wave radiation (TER). A simple and intuitive expression for the TER spectral density is derived and then applied to a specific structure: two interfacing photonic topological insulators with opposite spin-Chern indices. We show that TER breaks the time-reversal symmetry and enables valley- and spin-polarized generation of topologically protected edge waves propagating in one or both directions along the interface. Experimental measurements at the Argonne Wakefield Accelerator Facility are consistent with the excitation and localization of the edge waves. The concept of TER paves the way for novel particle accelerators and detectors.

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Source
http://dx.doi.org/10.1103/PhysRevLett.123.057402DOI Listing

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