Spin and Orbital Rotation of Plasmonic Dimer Driven by Circularly Polarized Light

Abstract The plasmon-enhanced spin and orbital rotation of Au dimer, two optically bound nanoparticles (NPs), induced by a circularly polarized (CP) light (plane wave or Gaussian beam) were studied theoretically. Through the optomechanical performances of optical forces and torques, the longitudinal...

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Main Authors: Jiunn-Woei Liaw, Mao-Chang Huang, Hsueh-Yu Chao, Mao-Kuen Kuo
Format: Article
Language:English
Published: SpringerOpen 2018-10-01
Series:Nanoscale Research Letters
Subjects:
MMP
Online Access:http://link.springer.com/article/10.1186/s11671-018-2739-3
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spelling doaj-b9086c759ef34ec1881ed9916b0d503c2020-11-25T02:00:09ZengSpringerOpenNanoscale Research Letters1931-75731556-276X2018-10-011311710.1186/s11671-018-2739-3Spin and Orbital Rotation of Plasmonic Dimer Driven by Circularly Polarized LightJiunn-Woei Liaw0Mao-Chang Huang1Hsueh-Yu Chao2Mao-Kuen Kuo3Department of Mechanical Engineering, Chang Gung UniversityInstitute of Applied Mechanics, National Taiwan UniversityInstitute of Applied Mechanics, National Taiwan UniversityInstitute of Applied Mechanics, National Taiwan UniversityAbstract The plasmon-enhanced spin and orbital rotation of Au dimer, two optically bound nanoparticles (NPs), induced by a circularly polarized (CP) light (plane wave or Gaussian beam) were studied theoretically. Through the optomechanical performances of optical forces and torques, the longitudinal/transverse spin-orbit coupling (SOC) of twisted electromagnetic fields was investigated. The optical forces show that for the long-range interaction, there exist some stable-equilibrium orbits for rotation, where the stable-equilibrium interparticle distances are nearly the integer multiples of wavelength in medium. In addition, the optical spin torque drives each NP to spin individually. For a plane wave, the helicities of the longitudinal spin and orbital rotation of the coupled NPs are the same at the stable-equilibrium orbit, consistent with the handedness of plane wave. In contrast, for a focused Gaussian beam, the helicity of the orbital rotation of dimer could be opposite to the handedness of the incident light due to the negative optical orbital torque at the stable-equilibrium interparticle distance; additionally, the transverse spin of each NP becomes profound. These results demonstrate that the longitudinal/transverse SOC is significantly induced due to the twisted optical field. For the short-range interaction, the mutual attraction between two NPs is induced, associated with the spinning and spiral trajectory; eventually, the two NPs will collide. The borderline of the interparticle distance between the long-range and short-range interactions is approximately at a half-wavelength in medium.http://link.springer.com/article/10.1186/s11671-018-2739-3Optical manipulationLaser trappingPlasmonicsSurface plasmonsSpin-orbit couplingMMP
collection DOAJ
language English
format Article
sources DOAJ
author Jiunn-Woei Liaw
Mao-Chang Huang
Hsueh-Yu Chao
Mao-Kuen Kuo
spellingShingle Jiunn-Woei Liaw
Mao-Chang Huang
Hsueh-Yu Chao
Mao-Kuen Kuo
Spin and Orbital Rotation of Plasmonic Dimer Driven by Circularly Polarized Light
Nanoscale Research Letters
Optical manipulation
Laser trapping
Plasmonics
Surface plasmons
Spin-orbit coupling
MMP
author_facet Jiunn-Woei Liaw
Mao-Chang Huang
Hsueh-Yu Chao
Mao-Kuen Kuo
author_sort Jiunn-Woei Liaw
title Spin and Orbital Rotation of Plasmonic Dimer Driven by Circularly Polarized Light
title_short Spin and Orbital Rotation of Plasmonic Dimer Driven by Circularly Polarized Light
title_full Spin and Orbital Rotation of Plasmonic Dimer Driven by Circularly Polarized Light
title_fullStr Spin and Orbital Rotation of Plasmonic Dimer Driven by Circularly Polarized Light
title_full_unstemmed Spin and Orbital Rotation of Plasmonic Dimer Driven by Circularly Polarized Light
title_sort spin and orbital rotation of plasmonic dimer driven by circularly polarized light
publisher SpringerOpen
series Nanoscale Research Letters
issn 1931-7573
1556-276X
publishDate 2018-10-01
description Abstract The plasmon-enhanced spin and orbital rotation of Au dimer, two optically bound nanoparticles (NPs), induced by a circularly polarized (CP) light (plane wave or Gaussian beam) were studied theoretically. Through the optomechanical performances of optical forces and torques, the longitudinal/transverse spin-orbit coupling (SOC) of twisted electromagnetic fields was investigated. The optical forces show that for the long-range interaction, there exist some stable-equilibrium orbits for rotation, where the stable-equilibrium interparticle distances are nearly the integer multiples of wavelength in medium. In addition, the optical spin torque drives each NP to spin individually. For a plane wave, the helicities of the longitudinal spin and orbital rotation of the coupled NPs are the same at the stable-equilibrium orbit, consistent with the handedness of plane wave. In contrast, for a focused Gaussian beam, the helicity of the orbital rotation of dimer could be opposite to the handedness of the incident light due to the negative optical orbital torque at the stable-equilibrium interparticle distance; additionally, the transverse spin of each NP becomes profound. These results demonstrate that the longitudinal/transverse SOC is significantly induced due to the twisted optical field. For the short-range interaction, the mutual attraction between two NPs is induced, associated with the spinning and spiral trajectory; eventually, the two NPs will collide. The borderline of the interparticle distance between the long-range and short-range interactions is approximately at a half-wavelength in medium.
topic Optical manipulation
Laser trapping
Plasmonics
Surface plasmons
Spin-orbit coupling
MMP
url http://link.springer.com/article/10.1186/s11671-018-2739-3
work_keys_str_mv AT jiunnwoeiliaw spinandorbitalrotationofplasmonicdimerdrivenbycircularlypolarizedlight
AT maochanghuang spinandorbitalrotationofplasmonicdimerdrivenbycircularlypolarizedlight
AT hsuehyuchao spinandorbitalrotationofplasmonicdimerdrivenbycircularlypolarizedlight
AT maokuenkuo spinandorbitalrotationofplasmonicdimerdrivenbycircularlypolarizedlight
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