C. Conti, and E. DelRe. Physical Review Letters, (August 2010)ArXiv e-prints 1008.2616.
Abstract
We investigate theoretically, numerically and experimentally nonlinear optical waves in an absorbing out-of-equilibrium colloidal material at the gelification transition. At sufficiently high optical intensity, absorption is frustrated and light propagates into the medium. The process is mediated by the formation of a matter-shock wave due to optically induced thermodiffusion, and largely resembles the mechanism of hydrodynamical supercavitation, as it is accompanied by a dynamic phase-transition region between the beam and the absorbing material.
%0 Journal Article
%1 2010arXiv1008.2616C
%A Conti, Claudio
%A DelRe, Eugenio
%D 2010
%J Physical Review Letters
%K - Condensed Dynamics Fluid Matter Matter, Optics, Physics Soft myown
%P 118301
%T Optical Supercavitation in Soft Matter
%U http://link.aps.org/doi/10.1103/PhysRevLett.105.118301
%V 105
%X We investigate theoretically, numerically and experimentally nonlinear optical waves in an absorbing out-of-equilibrium colloidal material at the gelification transition. At sufficiently high optical intensity, absorption is frustrated and light propagates into the medium. The process is mediated by the formation of a matter-shock wave due to optically induced thermodiffusion, and largely resembles the mechanism of hydrodynamical supercavitation, as it is accompanied by a dynamic phase-transition region between the beam and the absorbing material.
@article{2010arXiv1008.2616C,
abstract = {We investigate theoretically, numerically and experimentally nonlinear optical waves in an absorbing out-of-equilibrium colloidal material at the gelification transition. At sufficiently high optical intensity, absorption is frustrated and light propagates into the medium. The process is mediated by the formation of a matter-shock wave due to optically induced thermodiffusion, and largely resembles the mechanism of hydrodynamical supercavitation, as it is accompanied by a dynamic phase-transition region between the beam and the absorbing material.},
added-at = {2016-08-08T09:50:00.000+0200},
adsnote = {Provided by the SAO/NASA Astrophysics Data System},
adsurl = {http://adsabs.harvard.edu/abs/2010arXiv1008.2616C},
archiveprefix = {arXiv},
author = {Conti, Claudio and DelRe, Eugenio},
biburl = {https://www.bibsonomy.org/bibtex/2c666e17baf927e83d2f691f8a9f9b19c/nonlinearxwaves},
eprint = {http://arxiv.org/abs/1008.2616},
interhash = {903cb65e9bbd710d5a708a5ee3a8071f},
intrahash = {c666e17baf927e83d2f691f8a9f9b19c},
journal = {Physical Review Letters},
keywords = {- Condensed Dynamics Fluid Matter Matter, Optics, Physics Soft myown},
month = aug,
note = {ArXiv e-prints 1008.2616},
pages = 118301,
primaryclass = {physics.optics},
timestamp = {2016-08-08T09:54:02.000+0200},
title = {Optical Supercavitation in Soft Matter},
url = {http://link.aps.org/doi/10.1103/PhysRevLett.105.118301},
volume = 105,
year = 2010
}