Larmor Power Limit for Cyclotron Radiation of Relativistic Particles in a Waveguide
Abstract
Cyclotron radiation emission spectroscopy (CRES) is a modern technique for high-precision energy spectroscopy, in which the energy of a charged particle in a magnetic field is measured via the frequency of the emitted cyclotron radiation. The He6-CRES collaboration aims to use CRES to probe beyond the standard model physics at the TeV scale by performing high-resolution and low-background beta-decay spectroscopy of and . Having demonstrated the first observation of individual, high-energy (0.1 -- 2.5 MeV) positrons and electrons via their cyclotron radiation, the experiment provides a novel window into the radiation of relativistic charged particles in a waveguide via the time-derivative (slope) of the cyclotron radiation frequency, . We show that analytic predictions for the total cyclotron radiation power emitted by a charged particle in circular and rectangular waveguides are approximately consistent with the Larmor formula, each scaling with the Lorentz factor of the underlying as . This hypothesis is corroborated with experimental CRES slope data.
Cite
@article{arxiv.2405.06847,
title = {Larmor Power Limit for Cyclotron Radiation of Relativistic Particles in a Waveguide},
author = {N. Buzinsky and R. J. Taylor and W. Byron and W. DeGraw and B. Dodson and M. Fertl and A. García and A. P. Goodson and B. Graner and H. Harrington and L. Hayen and L. Malavasi and D. McClain and D. Melconian and P. Müller and E. Novitski and N. S. Oblath and R. G. H. Robertson and G. Rybka and G. Savard and E. Smith and D. D. Stancil and D. W. Storm and H. E. Swanson and J. R. Tedeschi and B. A. VanDevender and F. E. Wietfeldt and A. R. Young},
journal= {arXiv preprint arXiv:2405.06847},
year = {2024}
}
Comments
21 pages, 5 figures