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September 23, 2025Physical Review Research2 citations

Open channels and radiation trapping eigenstates in complex resonant media

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RRRomain RescanieresRPRomain PierratAGArthur Goetschy

Key Points

  • The distribution of transmission eigenvalues shows a transition from monomodal to bimodal profiles near resonance, impacting energy storage.
  • Dwell-time eigenvalues broaden significantly as resonance is approached, with maximum lifetimes exceeding the median by several orders of magnitude.
  • Wavefront shaping enhances both transmission and energy storage in disordered resonant media, especially in the diffusive regime.
  • Utilizing high-Q resonators can significantly increase energy storage, enhancing both diffusion and localization effects.

Abstract

We present a statistical study of the transmission and dwell-time matrices in disordered media composed of resonators, focusing on how frequency detuning influences their eigenvalue distributions. Our analysis reveals that the distribution of transmission eigenvalues undergoes a transition from a monomodal to a bimodal profile, and back to monomodal, as the frequency approaches the resonant frequency of the particles. Moreover, the distribution of dwell-time eigenvalues broadens significantly near resonance, with the longest lifetimes exceeding the median by several orders of magnitude. These results are explained by examining how frequency ω affects the transport mean free path of light ℓ(ω) and the energy transport velocity vE(ω), which in turn shape the observed distributions. We demonstrate the strong potential of wavefront shaping to synthesize wavefronts associated with eigenstates that enhance transmission and energy storage (or radiation trapping) in resonant disordered media. In the diffusive regime, where the system thickness L exceeds the mean free path, both transmission and dwell time can be enhanced by a factor ∝L/ℓ(ω)≫1 when using wavefronts associated with the largest eigenvalues instead of plane waves. In the localized regime, the enhancements become ∝Ne2L/ξ for transmission and ∝Nξ/L for dwell time, where ξ is the localization length and N is the number of controlled scattering channels. Finally, we show that employing high-Q resonators instead of low-Q ones increases energy storage within the medium by a factor of ∝Q/kℓ(ω) in both the diffusive and localized regimes.

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Cite This Study

Rescanieres et al. (2025) studied this question.

synapsesocial.com/papers/68d4759931b076d99fa6d902https://doi.org/10.1103/wqrf-tkty
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