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The Nanoscale Optical Properties of Complex Nanostructures
Record Type:
Language materials, printed : Monograph/item
Title/Author:
The Nanoscale Optical Properties of Complex Nanostructures/ by Jordan A. Hachtel.
Author:
Hachtel, Jordan A.
Description:
XVII, 129 p. 63 illus., 56 illus. in color.online resource. :
Contained By:
Springer Nature eBook
Subject:
Optics, Lasers, Photonics, Optical Devices. -
Online resource:
https://doi.org/10.1007/978-3-319-70259-9
ISBN:
9783319702599
The Nanoscale Optical Properties of Complex Nanostructures
Hachtel, Jordan A.
The Nanoscale Optical Properties of Complex Nanostructures
[electronic resource] /by Jordan A. Hachtel. - 1st ed. 2018. - XVII, 129 p. 63 illus., 56 illus. in color.online resource. - Springer Theses, Recognizing Outstanding Ph.D. Research,2190-5053. - Springer Theses, Recognizing Outstanding Ph.D. Research,.
Chap1: Introduction -- Chap2: Tools and Techniques -- Chap3: Extracting Interface Absorption Effects from First Principles -- Chap4: Advanced Electron Microscopy for Complex Nanotechnology -- Chap5: Probing Plasmons in Three Dimensions -- Chap6: The Plasmonic Response of Archimedean Spirals -- Chap7: Future Directions and Conclusion -- Appendices: A - C -- Curriculum Vitae.
This book presents studies of complex nanostructures with unique optical responses from both theoretical and experimental perspectives. The theory approaches the optical response of a complex structure from both quantum-mechanical and semiclassical frameworks, and is used to understand experimental results at a fundamental level as well as to form a quantitative model to allow the design of custom nanostructures. The experiments utilize scanning transmission electron microscopy and its associated analytical spectroscopies to observe nanoscale optical effects, such as surface plasmon resonances, with nanometer-scale spatial resolution. Furthermore, there is a focus in the dissertation on the combination of distinct techniques to study the difficult-to-access aspects of the nanoscale response of complex nanostructures: the combination of complementary spectroscopies, the combination of electron microscopy and photonics, and the combination of experiment and theory. Overall, the work demonstrates the importance of observing nanoscale optical phenomena in complex structures, and observing them directly at the nanoscale.
ISBN: 9783319702599
Standard No.: 10.1007/978-3-319-70259-9doiSubjects--Topical Terms:
1112289
Optics, Lasers, Photonics, Optical Devices.
LC Class. No.: QC176.8.N35
Dewey Class. No.: 620.5
The Nanoscale Optical Properties of Complex Nanostructures
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Chap1: Introduction -- Chap2: Tools and Techniques -- Chap3: Extracting Interface Absorption Effects from First Principles -- Chap4: Advanced Electron Microscopy for Complex Nanotechnology -- Chap5: Probing Plasmons in Three Dimensions -- Chap6: The Plasmonic Response of Archimedean Spirals -- Chap7: Future Directions and Conclusion -- Appendices: A - C -- Curriculum Vitae.
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This book presents studies of complex nanostructures with unique optical responses from both theoretical and experimental perspectives. The theory approaches the optical response of a complex structure from both quantum-mechanical and semiclassical frameworks, and is used to understand experimental results at a fundamental level as well as to form a quantitative model to allow the design of custom nanostructures. The experiments utilize scanning transmission electron microscopy and its associated analytical spectroscopies to observe nanoscale optical effects, such as surface plasmon resonances, with nanometer-scale spatial resolution. Furthermore, there is a focus in the dissertation on the combination of distinct techniques to study the difficult-to-access aspects of the nanoscale response of complex nanostructures: the combination of complementary spectroscopies, the combination of electron microscopy and photonics, and the combination of experiment and theory. Overall, the work demonstrates the importance of observing nanoscale optical phenomena in complex structures, and observing them directly at the nanoscale.
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