Delivering Broadband Light Deep Inside Diffusive Media
arXiv:2309.09376 · doi:10.1038/s41566-024-01446-7
Abstract
Wavefront shaping enables targeted delivery of coherent light into random-scattering media, such as biological tissue, by constructive interference of scattered waves. However, broadband waves have short coherence times, weakening the interference effect. Here, we introduce a broadband deposition matrix that identifies a single input wavefront that maximizes the broadband energy delivered to an extended target deep inside a diffusive system. We experimentally demonstrate that long-range spatial and spectral correlations result in a six-fold energy enhancement for targets containing more than 1500 speckle grains and located at a depth of up to ten transport mean free paths, even when the coherence time is an order of magnitude shorter than the diffusion dwell time of light in the scattering sample. In the broadband (fast decoherence) limit, enhancement of energy delivery to extended targets becomes nearly independent of the target depth and dissipation. Our experiments, numerical simulations, and analytic theory establish the fundamental limit for broadband energy delivery deep into a diffusive system, which has important consequences for practical applications.
17 pages, 10 figures
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Cited by in corpus (4)
- Mesoscopic Theory of Wavefront Shaping to Focus Waves inside Disordered Media
- Radiant Field Theory: A Transport Approach to Shaped Wave Transmission through Disordered Media
- Transmission eigenvalue distribution in disordered media from radiant field theory
- Harnessing coherent-wave control for sensing applications