While a three-dimensional (3D) scattering medium is from the outset opaque, such a medium sustains intriguing transport channels with near-unity transmission that are pursued for fundamental reasons and for applications in solid-state lighting, random lasers, solar cells, and biomedical optics. Here, we study the 3D spatially resolved distribution of the energy density of light in a 3D scattering medium upon the excitation of highly transmitting channels. The coupling into these channels is excited by spatially shaping the incident optical wavefronts to a focus on the back surface. To probe the local energy density, we excite isolated fluorescent nanospheres distributed inside the medium. From the spatial fluorescent intensity pattern we ob...
We show that the spatial distribution of the energy density of optimally shaped waves inside a scatt...
We experimentally observe the spatial intensity statistics of light transmitted through three-dimens...
Light in heavily scattering media such as tissue can be modeled with a diffusion equation. A diffusi...
While a three-dimensional (3D) scattering medium is from the outset opaque, such a medium sustains i...
We demonstrate experimentally that optical wavefront shaping increases light coupling into the funda...
We demonstrate experimentally that optical wavefront shaping selectively couples light into the fund...
This thesis presents experimental investigations into the propagation of light inside both disordere...
We experimentally observe the spatial intensity statistics of light transmitted through three-dimens...
The accurate determination of the position-dependent energy fluence rate of light is crucial for the...
The recent advent of wave-shaping methods has demonstrated the focusing of light through and inside ...
We show that the spatial distribution of the energy density of optimally shaped waves inside a scatt...
International audienceThe use of wavefront shaping to generate extended optical excitation patterns ...
Inner diffraction phenomenon is known as the major obstacle of light transmission through scattering...
We show that the spatial distribution of the energy density of optimally shaped waves inside a scatt...
We experimentally observe the spatial intensity statistics of light transmitted through three-dimens...
Light in heavily scattering media such as tissue can be modeled with a diffusion equation. A diffusi...
While a three-dimensional (3D) scattering medium is from the outset opaque, such a medium sustains i...
We demonstrate experimentally that optical wavefront shaping increases light coupling into the funda...
We demonstrate experimentally that optical wavefront shaping selectively couples light into the fund...
This thesis presents experimental investigations into the propagation of light inside both disordere...
We experimentally observe the spatial intensity statistics of light transmitted through three-dimens...
The accurate determination of the position-dependent energy fluence rate of light is crucial for the...
The recent advent of wave-shaping methods has demonstrated the focusing of light through and inside ...
We show that the spatial distribution of the energy density of optimally shaped waves inside a scatt...
International audienceThe use of wavefront shaping to generate extended optical excitation patterns ...
Inner diffraction phenomenon is known as the major obstacle of light transmission through scattering...
We show that the spatial distribution of the energy density of optimally shaped waves inside a scatt...
We experimentally observe the spatial intensity statistics of light transmitted through three-dimens...
Light in heavily scattering media such as tissue can be modeled with a diffusion equation. A diffusi...