English

Plasmonic tweezers based on connected nanoring apertures

Optics 2020-07-20 v1 Applied Physics

Abstract

The manipulation of microparticles using optical forces has led to many applications in the life and physical sciences. To extend optical trapping towards the nano-regime, in this work we demonstrate trapping of single nanoparticles in arrays of plasmonic coaxial nano-apertures with various inner disk configurations and theoretically estimate the associated forces. A high normalised experimental trap stiffness of 3.50fN/nm/mW for 20nm polystyrene particles is observed for an optimum design of 149nm for the nanodisk diameter at a trapping wavelength of 980nm. Theoretical simulations are used to interpret the enhancement of the observed trap stiffness. A quick particle trapping time of less than 8sec is obtained at a concentration of 14×\times1011^{11} particles/ml with low incident laser intensity of 0.59mW/μ\mum2^{2}. This good trapping performance with fast delivery of nanoparticles to multiple trapping sites emerges from a combination of the enhanced electromagnetic near-field and spatial temperature increase. This work has applications in nanoparticle delivery and trapping with high accuracy, and bridges the gap between optical manipulation and nanofluidics.

Keywords

Cite

@article{arxiv.2007.08769,
  title  = {Plasmonic tweezers based on connected nanoring apertures},
  author = {Theodoros D. Bouloumis and Domna G. Kotsifaki and Xue Han and Sile Nic Chormaic and Viet Giang Truong},
  journal= {arXiv preprint arXiv:2007.08769},
  year   = {2020}
}

Comments

12 pages, 4 figures

R2 v1 2026-06-23T17:11:15.775Z