Novel cloaking devices for surface wave and thermal manipulation : from theory to implementation

The thesis studies the practical realization of manipulation of electromagnetic energy based on the area-preserved affine transformation optics method, and further investigates the manipulation of thermal energy with the design of a three-dimensional thermal cloak. Electromagnetic Manipulation base...

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Main Author: Xu, Hongyi
Other Authors: Sun Handong
Format: Theses and Dissertations
Language:English
Published: 2015
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Online Access:http://hdl.handle.net/10356/62114
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-621142023-03-01T00:02:02Z Novel cloaking devices for surface wave and thermal manipulation : from theory to implementation Xu, Hongyi Sun Handong School of Physical and Mathematical Sciences DRNTU::Science::Physics::Optics and light DRNTU::Science::Physics::Heat and thermodynamics The thesis studies the practical realization of manipulation of electromagnetic energy based on the area-preserved affine transformation optics method, and further investigates the manipulation of thermal energy with the design of a three-dimensional thermal cloak. Electromagnetic Manipulation based on Transformation Optics method enables unprecedented waveguiding concept and devices, with the representative example of invisibility cloaking and waveguiding device, and their realizations in two-dimensional scale. Although functionalities of various cloaking and waveguiding designs are ideal in theory, their experimental realizations remain imperfect due to the limitation of complex electromagnetic constitutive parameters. We overcome the problem of complex requirement of constitutive parameters in electromagnetic transformation-based devices by re-designing the coordinate transformation process. The solution is the area-preserved affine transformation method, in which the transformation process is linear, and the area is preserved during transformation. The solution reduces requirement of constitutive parameters from inhomogeneous permittivity and none-unitary permeability to homogeneous permittivity and unitary permeability, without compromising device functionalities. We demonstrate the effectiveness of method through the theoretical design and experimental realization of surface wave manipulation devices. We further extend the study of manipulation of electromagnetic wave to manipulation of conductive heat flux, which in macroscopic scale is in analog to zero-frequency electromagnetic phenomena such as direct current and static magnetic field. We introduce the design, fabrication and characterization of the first three-dimensional thermal invisibility cloak. Doctor of Philosophy (SPMS) 2015-01-21T03:50:19Z 2015-01-21T03:50:19Z 2014 2014 Thesis http://hdl.handle.net/10356/62114 en 146 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Science::Physics::Optics and light
DRNTU::Science::Physics::Heat and thermodynamics
spellingShingle DRNTU::Science::Physics::Optics and light
DRNTU::Science::Physics::Heat and thermodynamics
Xu, Hongyi
Novel cloaking devices for surface wave and thermal manipulation : from theory to implementation
description The thesis studies the practical realization of manipulation of electromagnetic energy based on the area-preserved affine transformation optics method, and further investigates the manipulation of thermal energy with the design of a three-dimensional thermal cloak. Electromagnetic Manipulation based on Transformation Optics method enables unprecedented waveguiding concept and devices, with the representative example of invisibility cloaking and waveguiding device, and their realizations in two-dimensional scale. Although functionalities of various cloaking and waveguiding designs are ideal in theory, their experimental realizations remain imperfect due to the limitation of complex electromagnetic constitutive parameters. We overcome the problem of complex requirement of constitutive parameters in electromagnetic transformation-based devices by re-designing the coordinate transformation process. The solution is the area-preserved affine transformation method, in which the transformation process is linear, and the area is preserved during transformation. The solution reduces requirement of constitutive parameters from inhomogeneous permittivity and none-unitary permeability to homogeneous permittivity and unitary permeability, without compromising device functionalities. We demonstrate the effectiveness of method through the theoretical design and experimental realization of surface wave manipulation devices. We further extend the study of manipulation of electromagnetic wave to manipulation of conductive heat flux, which in macroscopic scale is in analog to zero-frequency electromagnetic phenomena such as direct current and static magnetic field. We introduce the design, fabrication and characterization of the first three-dimensional thermal invisibility cloak.
author2 Sun Handong
author_facet Sun Handong
Xu, Hongyi
format Theses and Dissertations
author Xu, Hongyi
author_sort Xu, Hongyi
title Novel cloaking devices for surface wave and thermal manipulation : from theory to implementation
title_short Novel cloaking devices for surface wave and thermal manipulation : from theory to implementation
title_full Novel cloaking devices for surface wave and thermal manipulation : from theory to implementation
title_fullStr Novel cloaking devices for surface wave and thermal manipulation : from theory to implementation
title_full_unstemmed Novel cloaking devices for surface wave and thermal manipulation : from theory to implementation
title_sort novel cloaking devices for surface wave and thermal manipulation : from theory to implementation
publishDate 2015
url http://hdl.handle.net/10356/62114
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