Plasmonics-A Route to Nanoscale Optical Devices
Плазмоника — путь к оптическим устройствам наномасштаба
2001-09-27
SCID: 54.1/qgbt4hfb
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coupled plasmon modeselectromagnetic energy switchingmetal nanoparticle arraysplasmonic waveguidessubdiffraction optical devices
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Abstract (AI)
The further integration of optical devices will require the fabrication of waveguides for electromagnetic energy below the diffraction limit of light. We investigate the possibility of using arrays of closely spaced metal nanoparticles for this purpose. Coupling between adjacent particles sets up coupled plasmon modes that give rise to coherent propagation of energy along the array. A point dipole analysis predicts group velocities of energy transport that exceed 0.1c along straight arrays and shows that energy transmission and switching through chain networks such as corners (see Figure) and tee structures is possible at high efficiencies. Radiation losses into the far field are expected to be negligible due to the near-field nature of the coupling, and resistive heating leads to transmission losses of about 6 dB/μm for gold and silver particles. We analyze macroscopic analogues operating in the microwave regime consisting of closely spaced metal rods by experiments and full field electrodynamic simulations. The guiding structures show a high confinement of the electromagnetic energy and allow for highly variable geometries and switching. Also, we have fabricated gold nanoparticle arrays using electron beam lithography and atomic force microscopy manipulation. These plasmon waveguides and switches could be the smallest devices with optical functionality.
Key Findings
1
Closely spaced metal nanoparticle arrays support coupled plasmon modes that enable coherent electromagnetic energy propagation below the diffraction limit.
2
Far-field radiation losses are expected to be negligible, while resistive heating produces approximately 6 dB/μm transmission loss for gold and silver particles.
3
Microwave-rod analogues and fabricated gold nanoparticle arrays demonstrate highly confined, geometrically versatile plasmonic waveguides and switches.
4
Plasmonic chain networks can transmit and switch energy through corners and tee junctions with high efficiency.
5
Point-dipole analysis predicts energy-transport group velocities exceeding 0.1c along straight nanoparticle arrays.
Research Object
Arrays of closely spaced metal nanoparticles forming plasmonic waveguides and switching networks
Research Subject
Coupled plasmon-mode energy propagation, confinement, transmission losses, and switching performance in the nanoparticle arrays
Publication Details
Publication Date
2001-09-27
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