An all-dielectric route to negative refraction

When light travels from one medium to another with a different refractive index, it will bend at the interface and this bending of light is called refraction. In the materials found in nature, the incident light beam and the refracted light beam lie in the opposite side of the normal to the surfac...

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Main Author: Darshini AppandaI
Other Authors: Luo Yu
Format: Final Year Project
Language:English
Published: Nanyang Technological University 2022
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Online Access:https://hdl.handle.net/10356/158150
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1581502023-07-07T19:24:08Z An all-dielectric route to negative refraction Darshini AppandaI Luo Yu School of Electrical and Electronic Engineering luoyu@ntu.edu.sg Engineering::Electrical and electronic engineering When light travels from one medium to another with a different refractive index, it will bend at the interface and this bending of light is called refraction. In the materials found in nature, the incident light beam and the refracted light beam lie in the opposite side of the normal to the surface. However, theoretical, and experimental developments show that, contrary to what we find in nature, the incident and refracted light beams can in fact lie on the same side of the surface normal. This phenomenon is called negative refraction and such artificially created metamaterials which facilitate negative refraction are known as ‘left-handed materials’ or ‘double negative (DNG) metamaterials. Most of these metamaterial designs have been metal based. They have large dissipation losses which greatly reduces the performance of the devices. In this project, a new approach by using all dielectric resonators to achieve low-loss negative refraction will be explored. We will be using the Wolfram Mathematica software to mathematically derive the effective electric permittivity and effective magnetic permeability. We will then be using COMSOL Multiphysics 5.5 software to model an array of dielectric resonators from the derived values. This will then be followed by the propagation of electromagnetic (EM) waves through the resonators to observe negative refraction. Bachelor of Engineering (Electrical and Electronic Engineering) 2022-05-30T08:20:53Z 2022-05-30T08:20:53Z 2022 Final Year Project (FYP) Darshini AppandaI (2022). An all-dielectric route to negative refraction. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/158150 https://hdl.handle.net/10356/158150 en A2156-211 application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Electrical and electronic engineering
spellingShingle Engineering::Electrical and electronic engineering
Darshini AppandaI
An all-dielectric route to negative refraction
description When light travels from one medium to another with a different refractive index, it will bend at the interface and this bending of light is called refraction. In the materials found in nature, the incident light beam and the refracted light beam lie in the opposite side of the normal to the surface. However, theoretical, and experimental developments show that, contrary to what we find in nature, the incident and refracted light beams can in fact lie on the same side of the surface normal. This phenomenon is called negative refraction and such artificially created metamaterials which facilitate negative refraction are known as ‘left-handed materials’ or ‘double negative (DNG) metamaterials. Most of these metamaterial designs have been metal based. They have large dissipation losses which greatly reduces the performance of the devices. In this project, a new approach by using all dielectric resonators to achieve low-loss negative refraction will be explored. We will be using the Wolfram Mathematica software to mathematically derive the effective electric permittivity and effective magnetic permeability. We will then be using COMSOL Multiphysics 5.5 software to model an array of dielectric resonators from the derived values. This will then be followed by the propagation of electromagnetic (EM) waves through the resonators to observe negative refraction.
author2 Luo Yu
author_facet Luo Yu
Darshini AppandaI
format Final Year Project
author Darshini AppandaI
author_sort Darshini AppandaI
title An all-dielectric route to negative refraction
title_short An all-dielectric route to negative refraction
title_full An all-dielectric route to negative refraction
title_fullStr An all-dielectric route to negative refraction
title_full_unstemmed An all-dielectric route to negative refraction
title_sort all-dielectric route to negative refraction
publisher Nanyang Technological University
publishDate 2022
url https://hdl.handle.net/10356/158150
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