Recent advances in wavefront shaping techniques for biomedical applications
arXiv:1502.05475 · doi:10.1016/j.cap.2015.02.015
Abstract
Due to the highly inhomogeneous distributions of refractive indexes, light propagation in complex media such as biological tissue experiences multiple light scattering events. The suppression and control of multiple light scattering events are investigated because they offer the possibility of optical focusing and imaging through biological tissues, and they may open new avenues for diagnosis and treatment of several human diseases. In order to provide insight into how new optical techniques can address the issues of multiple light scattering in biomedical applications, the recent progress in optical wavefront-shaping techniques is summarized.
References in corpus (9)
- Non-invasive real-time imaging through scattering layers and around corners via speckle correlations
- Image Transmission Through an Opaque Material
- Phase control algorithms for focusing light through turbid media
- Universal optimal transmission of light through disordered materials
- Control of light transmission through opaque scattering media in space and time
- Focusing Light through Random Photonic Media by Binary Amplitude Modulation
- Spatial amplitude and phase modulation using commercial twisted nematic LCDs
- Full transmission and reflection of waves propagating through a maze of disorder
- Focusing through turbid media by polarization modulation
Cited by in corpus (9)
- Light fields in complex media: mesoscopic scattering meets wave control
- Measuring optical transmission matrices by wavefront shaping
- Exploit imaging through opaque wall via deep learning
- Metadevice for intensity modulation with sub-wavelength spatial resolution
- Enhancing light transmission through a random medium with inhomogeneous scattering and loss
- Collaborative effects of wavefront shaping and optical clearing agent in optical coherence tomography
- Holographic intravital microscopy for 2-D and 3-D imaging intact circulating blood cells in microcapillaries of live mice
- Generalized image deconvolution by exploiting spatially variant point spread functions
- PhD Thesis: "Ad-hoc control of scattering for adaptive opaque lenses"