Observation of mutual extinction and transparency in light scattering
arXiv:2106.04318 · doi:10.1103/PhysRevA.104.043515
Abstract
Interference of scattered waves is fundamental for modern light-scattering techniques, such as optical wavefront shaping. Recently, a new type of wavefront shaping was introduced where the extinction is manipulated instead of the scattered intensity. The underlying idea is that upon changing the phases or the amplitudes of incident beams, the total extinction will change due to interference described by the cross terms between different incident beams. Here, we experimentally demonstrate the mutual extinction and transparency effects in scattering media, in particular, a human hair and a silicon bar. To this end, we send two light beams with a variable mutual angle on the sample. Depending on the relative phase of the incident beams we observe either nearly zero extinction, mutual transparency, or almost twice the single-beam extinction, mutual extinction, in agreement with theory. We use an analytical approximation for the scattering amplitude, starting from a completely opaque object and we discuss the limitations of our approximation. We discuss the applications of the mutual extinction and transparency effects in various fields such as non-line-of-sight communications, microscopy, and biomedical imaging.
References in corpus (6)
- Light fields in complex media: mesoscopic scattering meets wave control
- Universal optimal transmission of light through disordered materials
- Control of light transmission through opaque scattering media in space and time
- Exploiting speckle correlations to improve the resolution of wide-field fluorescence microscopy
- Deterministic light focusing in space and time through multiple scattering media with a Time-Resolved Transmission Matrix approach
- Excess-noise suppression for a squeezed state propagating through random amplifying media via wave-front shaping