Experimental study of radiation force on microspheres due to a single beam optical trap

Experimental study of radiation force on microspheres (e.g. polystyrene, fused silica, quartz crystals) was done using a single beam 1064 nm Nd: YAG diode-pumped solid state (dpss) laser. Other experimental parameter (e.g. back focal power, numerical aperture, and diameter size of the microsphere) w...

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Main Authors: Banzon, D., Camelo, J., Pobre, Romeric F., Baclig, A., Buenaobra, B., Blanca, C., Saloma, C.
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Published: Animo Repository 2005
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Online Access:https://animorepository.dlsu.edu.ph/faculty_research/12379
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Institution: De La Salle University
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spelling oai:animorepository.dlsu.edu.ph:faculty_research-140802024-03-19T00:33:29Z Experimental study of radiation force on microspheres due to a single beam optical trap Banzon, D. Camelo, J. Pobre, Romeric F. Baclig, A. Buenaobra, B. Blanca, C. Saloma, C. Experimental study of radiation force on microspheres (e.g. polystyrene, fused silica, quartz crystals) was done using a single beam 1064 nm Nd: YAG diode-pumped solid state (dpss) laser. Other experimental parameter (e.g. back focal power, numerical aperture, and diameter size of the microsphere) were also included in the experimentation process. Near the beam focus, optical trapping force behaves linearly with microsphere displacement where trapping stiffness is the constant of proportionality. Optical trapping stiffness was determined using the drag force method which was determined from the kinematic variables of the trapped microspheres. This computation was realized when trapped particles are subjected to external oscillations driven by a piezoelectric transducer attached to a glass slide. Detection and measurement of these kinematic variables were taken from the CCD imaging system of IMAQ-National Instruments. Through MATLAB's image processing program, position, velocity, and acceleration of the microspheres were calculated. Results show that all four experimental parameters had a direct effect on the trapping stiffness of the single beam optical trap. Optimum optical trap is achieved when quartz crystal microsphere was chosen among other nonlinear microsphere with experimental parameters: N.Α. = 0.5, refractive index of 1.458, back focal power of 16 mW and diameter size of 10um. 2005-01-01T08:00:00Z text https://animorepository.dlsu.edu.ph/faculty_research/12379 Faculty Research Work Animo Repository Microspheres Piezoelectricity Physical Sciences and Mathematics Physics
institution De La Salle University
building De La Salle University Library
continent Asia
country Philippines
Philippines
content_provider De La Salle University Library
collection DLSU Institutional Repository
topic Microspheres
Piezoelectricity
Physical Sciences and Mathematics
Physics
spellingShingle Microspheres
Piezoelectricity
Physical Sciences and Mathematics
Physics
Banzon, D.
Camelo, J.
Pobre, Romeric F.
Baclig, A.
Buenaobra, B.
Blanca, C.
Saloma, C.
Experimental study of radiation force on microspheres due to a single beam optical trap
description Experimental study of radiation force on microspheres (e.g. polystyrene, fused silica, quartz crystals) was done using a single beam 1064 nm Nd: YAG diode-pumped solid state (dpss) laser. Other experimental parameter (e.g. back focal power, numerical aperture, and diameter size of the microsphere) were also included in the experimentation process. Near the beam focus, optical trapping force behaves linearly with microsphere displacement where trapping stiffness is the constant of proportionality. Optical trapping stiffness was determined using the drag force method which was determined from the kinematic variables of the trapped microspheres. This computation was realized when trapped particles are subjected to external oscillations driven by a piezoelectric transducer attached to a glass slide. Detection and measurement of these kinematic variables were taken from the CCD imaging system of IMAQ-National Instruments. Through MATLAB's image processing program, position, velocity, and acceleration of the microspheres were calculated. Results show that all four experimental parameters had a direct effect on the trapping stiffness of the single beam optical trap. Optimum optical trap is achieved when quartz crystal microsphere was chosen among other nonlinear microsphere with experimental parameters: N.Α. = 0.5, refractive index of 1.458, back focal power of 16 mW and diameter size of 10um.
format text
author Banzon, D.
Camelo, J.
Pobre, Romeric F.
Baclig, A.
Buenaobra, B.
Blanca, C.
Saloma, C.
author_facet Banzon, D.
Camelo, J.
Pobre, Romeric F.
Baclig, A.
Buenaobra, B.
Blanca, C.
Saloma, C.
author_sort Banzon, D.
title Experimental study of radiation force on microspheres due to a single beam optical trap
title_short Experimental study of radiation force on microspheres due to a single beam optical trap
title_full Experimental study of radiation force on microspheres due to a single beam optical trap
title_fullStr Experimental study of radiation force on microspheres due to a single beam optical trap
title_full_unstemmed Experimental study of radiation force on microspheres due to a single beam optical trap
title_sort experimental study of radiation force on microspheres due to a single beam optical trap
publisher Animo Repository
publishDate 2005
url https://animorepository.dlsu.edu.ph/faculty_research/12379
_version_ 1800919007752093696