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Tapered nanofiber trapping of high-refractive-index nanoparticles

Optics 2015-06-17 v1

Abstract

A nanofiber-based optical tweezer is demonstrated. Trapping is achieved by combining attractive near-field optical gradient forces with repulsive electrostatic forces. Silica-coated Fe2_2O3_3 nanospheres of 300 diameter are trapped as close as 50 nm away from the surface with 810 μ\muW of optical power, with a maximum trap stiffness of 2.7 pN μ\mum1^{-1}. Electrostatic trapping forces up to 0.5 pN are achieved, a factor of 50 larger than those achievable for the same optical power in conventional optical tweezers. Efficient collection of the optical field directly into the nanofiber enables ultra-sensitive tracking of nanoparticle motion and extraction of its characteristic Brownian motion spectrum, with a minimum position sensitivity of 3.4 A˚/Hz\AA / \sqrt{\text{Hz}}.

Keywords

Cite

@article{arxiv.1310.5894,
  title  = {Tapered nanofiber trapping of high-refractive-index nanoparticles},
  author = {Jon D. Swaim and Joachim Knittel and Warwick P. Bowen},
  journal= {arXiv preprint arXiv:1310.5894},
  year   = {2015}
}

Comments

4 pages and 3 figures