Spin-Controlled Directional Launching of Surface Plasmons Under Oblique Illumination

被引:0
作者
Tao Huang
Jiajian Wang
Wei Liu
Feng Lin
Xing Zhu
机构
[1] Peking University,State Key Laboratory for Mesoscopic Physics, School of Physics
[2] Peking University,Center for Nanoscale Science and Technology, Academy for Advanced Interdisciplinary Studies
[3] National Center for Nanoscience and Technology,undefined
来源
Plasmonics | 2017年 / 12卷
关键词
Surface plasmons; Directional launching; Oblique illumination; Circularly polarized light;
D O I
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中图分类号
学科分类号
摘要
We proposed a scheme to tune the propagation direction of surface plasmon polaritons (SPPs) by external control of the polarization and/or the inclination angle of the incident light. The phase of the SPPs generated by the laser beam through slits can be divided into two parts: the position-related phase which is affected by the position of slits and spin-related phase which is affected by the orientation of slits and spin of photons. Using theoretical analysis and numerical simulation, we studied the position-related phase and spin-related phase of the SPPs excited by an inclined and circularly polarized light through a column of slits and then designed symmetric V-type slit array. We found when the incident light is in the symmetry plane of symmetric V-type slit array, spin of the incident light would give directions of surface plasmon propagation and the inclination angle of the incident light would give the inclination angle of surface plasmon propagation. The result shows that we may tune the propagation of the SPPs with significant flexibility, by changing the polarization of the incident light and the inclination angle of the incident light. Our designed launcher, as a spin plasmonic device under control, is expected to be of interest for future applications in photonic integrated circuits.
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页码:729 / 734
页数:5
相关论文
共 106 条
[1]  
Barnes WL(2003)Surface plasmon subwavelength optics Nature 424 824-830
[2]  
Dereux A(2016)Hybridization of surface plasmon polariton and photonic crystal modes in bragg mirror with periodically profiled metal film Nanoscale Res Lett 144 1-7
[3]  
Ebbesen TW(2010)Hybrid plasmonic waveguide based on tapered dielectric nanoribbon: excitation and focusing Plasmonics 5 207-212
[4]  
Sosnova MV(2009)Demonstration of nanofocusing by the use of plasmonic lens illuminated with radially polarized light Nano Lett 9 2139-2143
[5]  
Mamykin SV(2010)The use of plasmonics in light beaming and focusing Prog Quantum Electron 34 47-87
[6]  
Korovin AV(2009)Near-field electrical detection of optical plasmons and single plasmon sources Nat Phys 5 475-479
[7]  
Dmitruk NL(2010)Surface plasmon polariton enhancement in silver nanowire-nanoantenna structure Plasmonics 5 57-62
[8]  
Fang ZY(2003)Experimental studies of surface plasmon polariton band gap effect J Microsc 210 324-329
[9]  
Qi H(2008)Excitation of dielectric-loaded surface plasmon polariton observed by using near-field optical microscopy Appl Phys Lett 93 660-665
[10]  
Wang C(2008)Integration of photonic and silver nanowire plasmonic waveguides Nat Nanotechnol 3 1667-1670