Issue 9, 2016

Luminescent nanoparticle trapping with far-field optical fiber-tip tweezers

Abstract

We report stable and reproducible trapping of luminescent dielectric YAG:Ce3+ nanoparticles with sizes down to 60 nm using far-field dual fiber tip optical tweezers. The particles are synthesized by a specific glycothermal route followed by an original protected annealing step, resulting in significantly enhanced photostability. The tweezers properties are analyzed by studying the trapped particles residual Brownian motion using video or reflected signal records. The trapping potential is harmonic in the transverse direction to the fiber axis, but reveals interference fringes in the axial direction. Large trapping stiffness of 35 and 2 pN μm−1 W−1 is measured for a fiber tip-to-tip distance of 3 μm and 300 nm and 60 nm particles, respectively. The forces acting on the nanoparticles are discussed within the dipolar approximation (gradient and scattering force contributions) or exact calculations using the Maxwell Stress Tensor formalism. Prospects for trapping even smaller particles are discussed.

Graphical abstract: Luminescent nanoparticle trapping with far-field optical fiber-tip tweezers

Article information

Article type
Paper
Submitted
04 Nov 2015
Accepted
04 Feb 2016
First published
05 Feb 2016

Nanoscale, 2016,8, 5334-5342

Luminescent nanoparticle trapping with far-field optical fiber-tip tweezers

J. Decombe, F. J. Valdivia-Valero, G. Dantelle, G. Leménager, T. Gacoin, G. Colas des Francs, S. Huant and J. Fick, Nanoscale, 2016, 8, 5334 DOI: 10.1039/C5NR07727C

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