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Optical characterization of plasmoni...
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Denkova, Denitza.
Optical characterization of plasmonic nanostructures[electronic resource] :near-field imaging of the magnetic field of light /
紀錄類型:
書目-語言資料,印刷品 : Monograph/item
杜威分類號:
621.365
書名/作者:
Optical characterization of plasmonic nanostructures : near-field imaging of the magnetic field of light // by Denitza Denkova.
作者:
Denkova, Denitza.
出版者:
Cham : : Springer International Publishing :, 2016.
面頁冊數:
xxvi, 88 p. : : ill., digital ;; 24 cm.
Contained By:
Springer eBooks
標題:
Nanophotonics.
標題:
Nanostructured materials - Optical properties.
標題:
Plasmons (Physics)
標題:
Physics.
標題:
Optics, Optoelectronics, Plasmonics and Optical Devices.
標題:
Optical and Electronic Materials.
標題:
Nanoscale Science and Technology.
標題:
Nanotechnology.
ISBN:
9783319287935
ISBN:
9783319287928
內容註:
Introduction -- Imaging the Magnetic Near-field of Plasmon Modes in Bar Antennas -- A Near-Field-Aperture Probe as an Optical Magnetic Source and Detector -- Magnetic Near-Field Imaging of Increasingly Complex Plasmonic Antennas -- Plasmon-Enhanced Sub-wavelength Laser Ablation: Plasmonic Nano-Jets -- Conclusions and Outlook.
摘要、提要註:
This thesis focuses on a means of obtaining, for the first time, full electromagnetic imaging of photonic nanostructures. The author also develops a unique practical simulation framework which is used to confirm the results. The development of innovative photonic devices and metamaterials with tailor-made functionalities depends critically on our capability to characterize them and understand the underlying light-matter interactions. Thus, imaging all components of the electromagnetic light field at nanoscale resolution is of paramount importance in this area. This challenge is answered by demonstrating experimentally that a hollow-pyramid aperture probe SNOM can directly image the horizontal magnetic field of light in simple plasmonic antennas - rod, disk and ring. These results are confirmed by numerical simulations, showing that the probe can be approximated, to first order, by a magnetic point-dipole source. This approximation substantially reduces the simulation time and complexity and facilitates the otherwise controversial interpretation of near-field images. The validated technique is used to study complex plasmonic antennas and to explore new opportunities for their engineering and characterization.
電子資源:
http://dx.doi.org/10.1007/978-3-319-28793-5
Optical characterization of plasmonic nanostructures[electronic resource] :near-field imaging of the magnetic field of light /
Denkova, Denitza.
Optical characterization of plasmonic nanostructures
near-field imaging of the magnetic field of light /[electronic resource] :by Denitza Denkova. - Cham :Springer International Publishing :2016. - xxvi, 88 p. :ill., digital ;24 cm. - Springer theses,2190-5053. - Springer theses..
Introduction -- Imaging the Magnetic Near-field of Plasmon Modes in Bar Antennas -- A Near-Field-Aperture Probe as an Optical Magnetic Source and Detector -- Magnetic Near-Field Imaging of Increasingly Complex Plasmonic Antennas -- Plasmon-Enhanced Sub-wavelength Laser Ablation: Plasmonic Nano-Jets -- Conclusions and Outlook.
This thesis focuses on a means of obtaining, for the first time, full electromagnetic imaging of photonic nanostructures. The author also develops a unique practical simulation framework which is used to confirm the results. The development of innovative photonic devices and metamaterials with tailor-made functionalities depends critically on our capability to characterize them and understand the underlying light-matter interactions. Thus, imaging all components of the electromagnetic light field at nanoscale resolution is of paramount importance in this area. This challenge is answered by demonstrating experimentally that a hollow-pyramid aperture probe SNOM can directly image the horizontal magnetic field of light in simple plasmonic antennas - rod, disk and ring. These results are confirmed by numerical simulations, showing that the probe can be approximated, to first order, by a magnetic point-dipole source. This approximation substantially reduces the simulation time and complexity and facilitates the otherwise controversial interpretation of near-field images. The validated technique is used to study complex plasmonic antennas and to explore new opportunities for their engineering and characterization.
ISBN: 9783319287935
Standard No.: 10.1007/978-3-319-28793-5doiSubjects--Topical Terms:
339955
Nanophotonics.
LC Class. No.: TA1530
Dewey Class. No.: 621.365
Optical characterization of plasmonic nanostructures[electronic resource] :near-field imaging of the magnetic field of light /
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Introduction -- Imaging the Magnetic Near-field of Plasmon Modes in Bar Antennas -- A Near-Field-Aperture Probe as an Optical Magnetic Source and Detector -- Magnetic Near-Field Imaging of Increasingly Complex Plasmonic Antennas -- Plasmon-Enhanced Sub-wavelength Laser Ablation: Plasmonic Nano-Jets -- Conclusions and Outlook.
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