Affiliation:
1. Leibniz Institute of Photonic Technology
2. Institute of Scientific Instruments of CAS
3. Friedrich Schiller University Jena
4. Masaryk University
5. Vienna University of Technology (TU Wien)
Abstract
Light transport in a highly multimode fiber exhibits complex behavior
in space, time, frequency, and polarization, especially in the
presence of mode coupling. The newly developed techniques of spatial
wavefront shaping turn out to be highly suitable to harness such
enormous complexity: a spatial light modulator enables precise
characterization of field propagation through a multimode fiber, and
by adjusting the incident wavefront it can accurately tailor the
transmitted spatial pattern, temporal profile, and polarization state.
This unprecedented control leads to multimode fiber applications in
imaging, endoscopy, optical trapping, and microfabrication.
Furthermore, the output speckle pattern from a multimode fiber encodes
spatial, temporal, spectral, and polarization properties of the input
light, allowing such information to be retrieved from spatial
measurements only. This article provides an overview of recent
advances and breakthroughs in controlling light propagation in
multimode fibers, and discusses newly emerging applications.
Funder
National Science Foundation
Ministry of Education, Youth and Sports
2158 of the Czech Republic
European Commission
European Research Council
German Federal Ministry for Economic
Affairs and Climate Action
Austrian Science Fund
Subject
Atomic and Molecular Physics, and Optics
Cited by
34 articles.
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