Minimum-variance Brownian motion control of an optically trapped probe
Applied Optics, Vol. 48, Issue 30, pp. 5871-5880 (2009)
http://dx.doi.org/10.1364/AO.48.005871
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Abstract
This paper presents a theoretical and experimental investigation of the Brownian motion control of an optically trapped probe. The Langevin equation is employed to describe the motion of the probe experiencing random thermal force and optical trapping force. Since active feedback control is applied to suppress the probe’s Brownian motion, actuator dynamics and measurement delay are included in the equation. The equation of motion is simplified to a first-order linear differential equation and transformed to a discrete model for the purpose of controller design and data analysis. The derived model is experimentally verified by comparing the model prediction to the measured response of a
© 2009 Optical Society of America
OCIS Codes
(140.7010) Lasers and laser optics : Laser trapping
(230.1040) Optical devices : Acousto-optical devices
(350.4855) Other areas of optics : Optical tweezers or optical manipulation
ToC Category:
Lasers and Laser Optics
History
Original Manuscript: July 7, 2009
Manuscript Accepted: September 21, 2009
Published: October 19, 2009
Virtual Issues
Vol. 4, Iss. 12 Virtual Journal for Biomedical Optics
Citation
Yanan Huang, Zhipeng Zhang, and Chia-Hsiang Menq, "Minimum-variance Brownian motion control of an optically trapped probe," Appl. Opt. 48, 5871-5880 (2009)
http://www.opticsinfobase.org/ao/abstract.cfm?URI=ao-48-30-5871
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