English

Perfect Absorption in the Critically Damped Regime

Optics 2026-07-19 v1 Applied Physics

Abstract

We revisit the conditions for perfect electromagnetic absorption in a homogeneous lossy layer on a reflecting substrate. Using phasor diagram analysis, we demonstrate a fundamental physical similarity between the high-refractive-index limit (classic Dallenbach quarter-wavelength absorbers) and the epsilon-near-zero regime (half-wavelength resonances). In both extremes, perfect absorption relies on long cyclic multipath propagation and gradual amplitude decay. Crucially, we uncover that in the intermediate regime near n=1n = 1, this picture changes fundamentally: the trapping efficiency drastically increases, and backscattering is eliminated almost instantaneously within a single round-trip. Using temporal coupled-mode theory, we prove that this low-contrast state minimizes the system's quality factor to a global minimum of Q0.69Q \approx 0.69. This critically damped state mirrors universal highly damped stabilization principles found in acoustics and mechanics, driving anomalous spectral broadening and enabling nearly instantaneous dissipation of ultrashort pulses without time-domain ringing.

Cite

@article{arxiv.2607.17172,
  title  = {Perfect Absorption in the Critically Damped Regime},
  author = {Viacheslav V. Medvedev},
  journal= {arXiv preprint arXiv:2607.17172},
  year   = {2026}
}