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Low-velocity-favored transition radiation

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arxiv 2212.13066 v1 pith:MC7TPF32 submitted 2022-12-26 physics.optics

classification physics.optics
keywords radiationparticlestransitionhigh-energyintensitylightlow-energyparticle
verification ladder T0 review T1 audit T2 compute T3 formal
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When a charged particle penetrates through an optical interface, photon emissions emerge - a phenomenon known as transition radiation. Being paramount to fundamental physics, transition radiation has enabled many applications from high-energy particle identification to novel light sources. A rule of thumb in transition radiation is that the radiation intensity generally decreases with the particle velocity v; as a result, low-energy particles are not favored in practice. Here we find that there exist situations where transition radiation from particles with extremely low velocities (e.g. v/c<0.001) exhibits comparable intensity as that from high-energy particles (e.g. v/c=0.999), where c is light speed in free space. The comparable radiation intensity implies an extremely high photon extraction efficiency from low-energy particles, up to eight orders of magnitude larger than that from high-energy particles. This exotic phenomenon of low-velocity-favored transition radiation originates from the excitation of Ferrell-Berreman modes in epsilon-near-zero materials. Our findings may provide a promising route towards the design of integrated light sources based on low-energy electrons and specialized detectors for beyond-standard-model particles.

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  1. Cherenkov radiation in isotropic chiral matter: the space-frequency domain

    hep-ph 2025-07 conditional novelty 7.0 of 10

    A charge moving through chiral matter radiates Cherenkov light in two independent polarization modes, one of which can radiate at sub-luminal speeds.

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