Optical Trapping of Double-Ring Radially Polarized Beam with Improved Axial Trapping Efficiency

2010 ◽  
Vol 27 (10) ◽  
pp. 108701 ◽  
Author(s):  
Yao Bao-Li ◽  
Yan Shao-Hui ◽  
Ye Tong ◽  
Zhao Wei
2011 ◽  
Vol 43 (7) ◽  
pp. 1037-1040 ◽  
Author(s):  
K.B. Rajesh ◽  
N. Veerabagu Suresh ◽  
P.M. Anbarasan ◽  
K. Gokulakrishnan ◽  
G. Mahadevan

2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Vahid Shahabadi ◽  
Ebrahim Madadi ◽  
Daryoush Abdollahpour

AbstractIn this paper, we study the optical trapping of anti-reflection core-shell microspheres by regular Gaussian beam and several structured beams including radially polarized Gaussian, petal, and hard-aperture-truncated circular Airy beams. We show that using an appropriate anti-reflection core-shell microsphere for the optical trapping by several structured light beams can dramatically enhance the strength of the trap compared to the trapping by the common Gaussian beam. The optimal core-shell thickness ratio that minimizes the scattering force is obtained for polystyrene-silica and anatase-amorphous titania microspheres, such that the core-shells act as anti-reflection coated microspheres. We show that the trapping strength of the anti-reflection coated microparticles trapped by the common Gaussian beam is enhanced up to 2-fold compared to that of trapped uncoated microparticles, while the trapping of anti-reflection coated microparticles, by the radially polarized beam, is strengthened up to 4-fold in comparison to that of the trapped uncoated microparticles by the Gaussian beam. Our results indicate that for anatase-amorphous titania microparticles highest trap strength is obtained by radially polarized beam, while for the polystyrene-silica microparticles, the strongest trapping is achieved by the petal beam.


2020 ◽  
Author(s):  
Vahid Shahabadi ◽  
Ebrahim Madadi ◽  
Daryoush Abdollahpour

Abstract In this paper, we study the optical trapping of anti-reflection core-shell microspheres by regular Gaussian beam and several structured beams including radially polarized Gaussian, petal, and hard-aperture-truncated circular Airy beams. We show that using an appropriate anti-reflection core-shell microsphere for the optical trapping by several structured light beams can dramatically enhance the strength of the trap compared to the trapping by the common Gaussian beam. The optimal core-shell thickness ratio that minimizes the scattering force is obtained for polystyrene-silica and anatase-amorphous titania microspheres, such that the core-shells act as anti-reflection coated microspheres. We show that the trapping strength of the anti-reflection coated microparticles trapped by the common Gaussian beam is enhanced up to 2-folds compared to that of trapped uncoated microparticles, while the trapping of anti-reflection coated microparticles, by the radially polarized beam, is strengthened up to 4-folds in comparison to that of the trapped uncoated microparticles by the Gaussian beam. Our results indicate that for anatase-amorphous titania microparticles highest trap strength is obtained by radially polarized beam, while for the polystyrene-silica microparticles, the strongest trapping is achieved by the petal beam.


2013 ◽  
Vol 42 (4) ◽  
pp. 382-387 ◽  
Author(s):  
K. Prabakaran ◽  
K. B. Rajesh ◽  
T. V. S. Pillai ◽  
Haresh M. Pandya

2011 ◽  
Vol 48 (7) ◽  
pp. 071401
Author(s):  
李东华 Li Donghua ◽  
蒲继雄 Pu Jixiong ◽  
王喜庆 Wang Xiqing

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