English

Unstable mode and the Unruh-DeWitt detector

High Energy Physics - Theory 2025-10-30 v2

Abstract

We investigate the quantization of a single unstable mode in a real scalar field subject to a Robin boundary condition in (1+1)-dimensional half-Minkowski spacetime. The instability arises from an imaginary frequency mode - analogous to that of the inverted harmonic oscillator - requiring the rigged Hilbert space formalism for consistent quantization. Within this framework, the unstable mode is naturally described as a well-defined decaying (or growing) quantum state with a characteristic mean lifetime. We investigate its physical consequences via the response of an Unruh-DeWitt detector along static, inertial, and uniformly accelerated trajectories. For static and inertial observers, the detector response exhibits a Breit-Wigner resonance profile, with a decay width determined by the unstable frequency and a Doppler factor. In the Neumann limit, infrared divergences emerge from arbitrarily low-frequency modes. Interestingly, for accelerated detectors, the response acquires a nontrivial dependence on acceleration, and the Neumann limit yields a finite, oscillatory signal rather than a divergence, suggesting that acceleration can act as an effective infrared regulator.

Keywords

Cite

@article{arxiv.2508.20993,
  title  = {Unstable mode and the Unruh-DeWitt detector},
  author = {Bruno S. Felipe and João P. M. Pitelli},
  journal= {arXiv preprint arXiv:2508.20993},
  year   = {2025}
}
R2 v1 2026-07-01T05:10:41.551Z