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      Light fields in complex media: mesoscopic scattering meets wave control

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          Abstract

          The newly emerging field of wave front shaping in complex media has recently seen enormous progress. The driving force behind these advances has been the experimental accessibility of the information stored in the scattering matrix of a disordered medium, which can nowadays routinely be exploited to focus light as well as to image or to transmit information even across highly turbid scattering samples. We will provide an overview of these new techniques, of their experimental implementations as well as of the underlying theoretical concepts following from mesoscopic scattering theory. In particular, we will highlight the intimate connections between quantum transport phenomena and the scattering of light fields in disordered media, which can both be described by the same theoretical concepts. We also put particular emphasis on how the above topics relate to application-oriented research fields such as optical imaging, sensing and communication.

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          Compressed sensing

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            A revolution in optical manipulation.

            Optical tweezers use the forces exerted by a strongly focused beam of light to trap and move objects ranging in size from tens of nanometres to tens of micrometres. Since their introduction in 1986, the optical tweezer has become an important tool for research in the fields of biology, physical chemistry and soft condensed matter physics. Recent advances promise to take optical tweezers out of the laboratory and into the mainstream of manufacturing and diagnostics; they may even become consumer products. The next generation of single-beam optical traps offers revolutionary new opportunities for fundamental and applied research.
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              Near-Optimal Signal Recovery From Random Projections: Universal Encoding Strategies?

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                Author and article information

                Journal
                2017-02-17
                Article
                1702.05395
                e063d82a-d23e-4820-b58d-2b29f5c8bc50

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

                History
                Custom metadata
                73 pages, 39 figures; invited review article for Reviews of Modern Physics, published here with extra figures and an added section on experimental techniques for wavefront shaping (see section IV)
                physics.optics cond-mat.dis-nn cond-mat.mes-hall

                Theoretical physics,Nanophysics,Optical materials & Optics
                Theoretical physics, Nanophysics, Optical materials & Optics

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