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Published on: September 20, 2017
Nonlinear Self-Action of Light through Biological Suspensions
Anna Bezryadina1, Tobias Hansson2, Rekha Gautam1
1Department of Physics and Astronomy, San Francisco State University, San Francisco, California 94132, USA.
Abstract:
It is commonly thought that biological media cannot exhibit an appreciable nonlinear optical response. We demonstrate, for the first time to our knowledge, a tunable optical nonlinearity in suspensions of cyanobacteria that leads to robust propagation and strong self-action of a light beam. By deliberately altering the host environment of the marine bacteria, we show experimentally that nonlinear interaction can result in either deep penetration or enhanced scattering of light through the bacterial suspension, while the viability of the cells remains intact. A theoretical model is developed to show that a nonlocal nonlinearity mediated by optical forces (including both gradient and forward-scattering forces) acting on the bacteria explains our experimental observations.
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