Toroidal nanotraps for cold polar molecules

Marouane Salhi, Ali Passian, and George Siopsis
Phys. Rev. A 92, 033416 – Published 14 September 2015

Abstract

Electronic excitations in metallic nanoparticles in the optical regime that have been of great importance in surface-enhanced spectroscopy and emerging applications of molecular plasmonics, due to control and confinement of electromagnetic energy, may also be of potential to control the motion of nanoparticles and molecules. Here, we propose a concept for trapping polarizable particles and molecules using toroidal metallic nanoparticles. Specifically, gold nanorings are investigated for their scattering properties and field distribution to computationally show that the response of these optically resonant particles to incident photons permit the formation of a nanoscale trap when proper aspect ratio, photon wavelength, and polarization are considered. However, interestingly the resonant plasmonic response of the nanoring is shown to be detrimental to the trap formation. The results are in good agreement with analytic calculations in the quasistatic limit within the first-order perturbation of the scalar electric potential. The possibility of extending the single nanoring trapping properties to two-dimensional arrays of nanorings is suggested by obtaining the field distribution of nanoring dimers and trimers.

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  • Received 25 May 2015

DOI:https://doi.org/10.1103/PhysRevA.92.033416

©2015 American Physical Society

Authors & Affiliations

Marouane Salhi1,*, Ali Passian2,†, and George Siopsis1,‡

  • 1Department of Physics and Astronomy, The University of Tennessee, Knoxville, Tennessee 37996-1200, USA
  • 2Computational Sciences and Engineering Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37831-6418, USA

  • *msalhi@vols.utk.edu
  • passianan@ornl.gov
  • siopsis@tennessee.edu

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Issue

Vol. 92, Iss. 3 — September 2015

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