Bragg scattering and Brownian motion dynamics in optically induced crystals of submicron particles

R. E. Sapiro, B. N. Slama, and G. Raithel
Phys. Rev. E 87, 052311 – Published 29 May 2013

Abstract

A set of four confocal laser beams of 1064-nm wavelength is used to prepare optically induced crystals of submicron particles in aqueous solution. Thousands of polystyrene spheres of about 200 nm in diameter are trapped in three dimensions. Bragg scattering patterns obtained with a probe beam of 532-nm wavelength are in agreement with the calculated lattice structure and its polarization dependence. The decay and rise of the Bragg scattering intensity upon switching the lattice off and on reveal the Brownian motion dynamics of the particles in the periodic optical trapping potential. Experimental results agree well with results from trajectory simulations based on the Langevin equation. The results exhibit the interplay between Brownian motion and deterministic forces in an inhomogeneous (near-)periodic optical trapping potential.

  • Received 31 August 2012

DOI:https://doi.org/10.1103/PhysRevE.87.052311

©2013 American Physical Society

Authors & Affiliations

R. E. Sapiro, B. N. Slama, and G. Raithel

  • Department of Physics, University of Michigan, Ann Arbor, Michigan 48109, USA

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Issue

Vol. 87, Iss. 5 — May 2013

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