Enhanced Classical Radiation Damping of Electronic Cyclotron Motion in the Vicinity of the Van Hove Singularity in a Waveguide

Author:

Goto Yuki1ORCID,Garmon Savannah23ORCID,Petrosky Tomio43

Affiliation:

1. National Institute for Fusion Science, National Institutes of Natural Sciences , 332-6 Oroshi-cho, Toki, Gifu 509-5292 , Japan

2. Department of Physics, Osaka Metropolitan University , 1-1 Gakuen-cho, Naka-ku, Sakai, Osaka 599-8531 , Japan

3. Institute of Industrial Science, The University of Tokyo , 5-1-5, Kashiwanoha, Kashiwa, Chiba 277-8574 , Japan

4. Center for Complex Quantum Systems, The University of Texas at Austin , 2515 Speedway, Austin, Texas 78712 , USA

Abstract

Abstract We study the damping process of electron cyclotron motion and the resulting emission in a waveguide using the classical Friedrichs model without relying on perturbation analysis such as Fermi’s golden rule. A Van Hove singularity appears at the lower bound (or cutoff frequency) of the dispersion associated with each of the electromagnetic field modes in the waveguide. In the vicinity of the Van Hove singularity, we found that not only is the decay process associated with the resonance pole enhanced (amplification factor ∼104) but the branch-point effect is also comparably enhanced. As a result, the timescale on which most of the decay occurs is dramatically shortened. Further, this suggests that the non-Markovian branch-point effect should be experimentally observable in the vicinity of the Van Hove singularity. Our treatment yields a physically acceptable solution without the problematic runaway solution that is well known to appear in the traditional treatment of classical radiation damping based on the Abraham–Lorentz equation.

Funder

Japan Society for the Promotion of Science

National Institute for Fusion Science

NINS

Networking among Institutions

Publisher

Oxford University Press (OUP)

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