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arXiv · 1704.02248

Dual-mode optical fiber-based tweezers for robust trapping and manipulation of absorbing particles in air

Abstract

We develop an optical tweezers system using a single dual-mode optical fiber where mesoscopic absorbing particles can be trapped in three dimensions and manipulated employing photophoretic forces. We generate a superposition of fundamental and first order Hermite-Gaussian beam modes by the simple innovation of coupling a laser into a commercial optical fiber designed to be single mode for a wavelength higher than that of the laser. We achieve robust trapping of the absorbing particles for hours using both the pure fundamental and superposition mode beams and attain large manipulation velocities of ~5 mm/s in the axial direction and ~0.75 mm/s in the radial direction. We then demonstrate that the superposition mode is more effective in trapping and manipulation compared to the fundamental mode by around 80%, which may be increased several times by the use of a pure first order Hermite-Gaussian mode. The work has promising implications for trapping and spectroscopy of aerosols in air using simple optical fiber-based traps.

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Souvik Sil, Tushar Kanti Saha, Avinash Kumar, Sudipta K. Bera, Ayan Banerjee. 2017-04-05. Dual-mode optical fiber-based tweezers for robust trapping and manipulation of absorbing particles in air. https://doi.org/10.1088/2040-8986%2Faa9296

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