OPTICAL FORCES ON NON-SPHERICAL NANOPARTICLES TRAPPED BY OPTICAL WAVEGUIDES

被引:1
作者
Ahmed, Dewan Hasan [1 ]
Sung, Hyung Jin [1 ]
机构
[1] Korea Adv Inst Sci & Technol, Dept Mech Engn, Taejon 305701, South Korea
基金
新加坡国家研究基金会;
关键词
downward trapping; electromagnetic field; optical trap; transverse trapping; trapping efficiency; waveguide; MANIPULATION; TRANSPORT; PARTICLE; CELLS; MICROPARTICLES; ARRAYS; LIGHT;
D O I
10.1080/15599612.2011.604118
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Numerical simulations of a solid-core polymer waveguide structure were performed to calculate the trapping efficiencies of particles with nanoscale dimensions smaller than the wavelength of the trapping beam. A three-dimensional (3-D) finite element method was employed to calculate the electromagnetic field. The inlet and outlet boundary conditions were obtained using an eigenvalue solver to determine the guided and evanescent mode profiles. The Maxwell stress tensor was considered for the calculation of the transverse and downward trapping efficiencies. A particle at the center of the waveguide showed minimal transverse trapping efficiency and maximal downward trapping efficiency. This trend gradually reversed as the particle moved away from the center of the waveguide. Particles with larger surface areas exhibited higher trapping efficiencies and tended to be trapped near the waveguide. Particles displaced from the wave input tended to be trapped at the waveguide surface. Simulation of an ellipsoidal particle showed that the orientation of the major axis along the waveguide's lateral z-coordinate significantly influenced the trapping efficiency. The particle dimensions along the z-coordinate were more critical than the gap distance (vertical displacement from the floor of the waveguide) between the ellipsoid particle and the waveguide. The present model was validated using the available results reported in the literature for different trapping efficiencies.
引用
收藏
页码:217 / 233
页数:17
相关论文
共 50 条
[41]   Visualization of Optical Vortex Forces Acting on Au Nanoparticles Transported in Nanofluidic Channels [J].
Nakajima, Kichitaro ;
Tsujimura, Tempei ;
Doi, Kentaro ;
Kawano, Satoyuki .
ACS OMEGA, 2022, 7 (03) :2638-2648
[42]   Modal approach to optical forces between waveguides as derived by transformation optics formalism [J].
Iizuka, Hideo ;
Fan, Shanhui .
OPTICS LETTERS, 2019, 44 (04) :867-870
[43]   Rigorous analysis of optical forces between two dielectric planar waveguides immersed in dielectric fluid media [J].
Rodrigues, Janderson R. ;
Almeida, Vilson R. .
ANNALEN DER PHYSIK, 2017, 529 (04)
[44]   Bidirectional optical transportation and controllable positioning of nanoparticles using an optical nanofiber [J].
Lei, Hongxiang ;
Xu, Chong ;
Zhang, Yao ;
Li, Baojun .
NANOSCALE, 2012, 4 (21) :6707-6709
[45]   Optical forces in nanorod metamaterial [J].
Bogdanov, Andrey A. ;
Shalin, Alexander S. ;
Ginzburg, Pavel .
SCIENTIFIC REPORTS, 2015, 5
[46]   Optical analogue of Rabi oscillations in optical waveguides via structured continuum [J].
Bayal, Indranil ;
Panchadhyayee, Pradipta ;
Mahapatra, Prasanta Kumar .
JOURNAL OF MODERN OPTICS, 2015, 62 (17) :1412-1418
[47]   Fabrication and Characterization of Non-spherical Polymeric Particles [J].
Patil, Ajinkya ;
Dyawanapelly, Sathish ;
Dandekar, Prajakta ;
Jain, Ratnesh .
JOURNAL OF PHARMACEUTICAL INNOVATION, 2021, 16 (04) :747-758
[48]   Enhanced optical magnetism for reversed optical binding forces between silicon nanoparticles in the visible region [J].
Yano, Taka-aki ;
Tsuchimoto, Yuta ;
Zaccaria, Remo Proietti ;
Toma, Andrea ;
Portela, Alejandro ;
Hara, Masahiko .
OPTICS EXPRESS, 2017, 25 (01) :431-439
[49]   Optical waveguide trapping forces on hollow glass spheres [J].
Lovhaugen, Pal ;
Ahluwalia, Balpreet S. ;
Helleso, Olav G. .
COMPLEX LIGHT AND OPTICAL FORCES V, 2011, 7950
[50]   Bipolar optical forces on dielectric and metallic nanoparticles by evanescent wave [J].
Xiao, J. J. ;
Zheng, H. H. ;
Sun, Y. X. ;
Yao, Y. .
OPTICS LETTERS, 2010, 35 (07) :962-964