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Numerical study of optical trapping properties of nanoparticle on metallic film with periodic structure

Numerical study of optical trapping properties of nanoparticle on metallic film with periodic structure
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摘要 Based on the three-dimensional dispersive finite difference time domain method and Maxwell stress tensor equation,the optical trapping properties of nanoparticle placed on the gold film with periodic circular holes are investigated numerically. Surface plasmon polaritons are excited on the metal-dielectric interface, with particular emphasis on the crucial role in tailoring the optical force acting on a nearby nanoparticle. Utilizing a first order corrected electromagnetic field components for a fundamental Gaussian beam, the incident beam is added into the calculation model of the proposed method. To obtain the detailed trapping properties of nanoparticle, the selected calculations on the effects of beam waist radius, sizes of nanoparticle and circular holes, distance between incident Gaussian beam and gold film, material of nanoparticle and polarization angles of incident wave are analyzed in detail to demonstrate that the optical-trapping force can be explained as a virtual spring which has a restoring force to perform positive and negative forces as a nanoparticle moves closer to or away from the centers of circular holes. The results of optical trapping properties of nanoparticle in the vicinity of the gold film could provide guidelines for further research on the optical system design and manipulation of arbitrary composite nanoparticles. Based on the three-dimensional dispersive finite difference time domain method and Maxwell stress tensor equation,the optical trapping properties of nanoparticle placed on the gold film with periodic circular holes are investigated numerically. Surface plasmon polaritons are excited on the metal-dielectric interface, with particular emphasis on the crucial role in tailoring the optical force acting on a nearby nanoparticle. Utilizing a first order corrected electromagnetic field components for a fundamental Gaussian beam, the incident beam is added into the calculation model of the proposed method. To obtain the detailed trapping properties of nanoparticle, the selected calculations on the effects of beam waist radius, sizes of nanoparticle and circular holes, distance between incident Gaussian beam and gold film, material of nanoparticle and polarization angles of incident wave are analyzed in detail to demonstrate that the optical-trapping force can be explained as a virtual spring which has a restoring force to perform positive and negative forces as a nanoparticle moves closer to or away from the centers of circular holes. The results of optical trapping properties of nanoparticle in the vicinity of the gold film could provide guidelines for further research on the optical system design and manipulation of arbitrary composite nanoparticles.
作者 Cheng-Xian Ge Zhen-Sen Wu Jing Bai Lei Gong 葛城显;吴振森;白靖;巩蕾(School of Physics and Optoelectronic Engineering,Xidian University;School of Photoelectric Engineering,Xi'an Technological University)
出处 《Chinese Physics B》 SCIE EI CAS CSCD 2019年第2期223-233,共11页 中国物理B(英文版)
基金 Project supported by the National Natural Science Foundation of China(Grant Nos.61701382,61601355,and 61571355) the China Postdoctoral Science Foundation(Grant No.2016M602770) the Xi’an Technological University Principal Foundation Key Project,China(Grant No.XAGDXJJ18001)
关键词 surface PLASMON periodic circular HOLES optical TRAPPING force MAXWELL stress TENSOR gold film surface plasmon periodic circular holes optical trapping force Maxwell stress tensor gold film
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