Numerical studies of plasmonically coupled spherical nanoparticles via epsilon-near-zero metamaterials

Epsilon-near-zero (ENZ) metamaterials have captivated intensive studies due to the realization of optical properties that enhances the emission of Colloidal Nanocrystals. Colloidal Semiconductor Nanocrystals such as Quantum Dot and Nanoplatelet have raised significant attention in research studies b...

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Main Author: Farah Amirah Mohd Faizal
Other Authors: Hilmi Volkan Demir
Format: Final Year Project (FYP)
Language:English
Published: Nanyang Technological University 2021
Subjects:
Online Access:https://hdl.handle.net/10356/149953
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author Farah Amirah Mohd Faizal
author2 Hilmi Volkan Demir
author_facet Hilmi Volkan Demir
Farah Amirah Mohd Faizal
author_sort Farah Amirah Mohd Faizal
collection NTU
description Epsilon-near-zero (ENZ) metamaterials have captivated intensive studies due to the realization of optical properties that enhances the emission of Colloidal Nanocrystals. Colloidal Semiconductor Nanocrystals such as Quantum Dot and Nanoplatelet have raised significant attention in research studies because of their unique properties. The ability to be tuned and control imparted by quantum confinement effects make them promising candidates in the application of chiral sensing, asymmetric catalyst, quantum optics and spintronics. These unique optical properties allow the fabrication of intricate heterostructures that are not possible with other quantum-confined nanostructures. Forster Resonance Energy Transfer (FRET) is a type of Non-Radiative Energy Transfer (NRET) process that happens when the donor transfers energy to an acceptor in close proximity and is widely used in areas of biochemical analysis, environmental monitoring, and disease diagnosis. The rate of energy transfer depends on various factors, such as the distance between acceptors and donors, spectral overlap between donor emission and acceptor absorption, fluorescence quantum yield of the donor, dipole orientation and also refractive index of the medium.
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spelling ntu-10356/1499532023-07-07T18:12:15Z Numerical studies of plasmonically coupled spherical nanoparticles via epsilon-near-zero metamaterials Farah Amirah Mohd Faizal Hilmi Volkan Demir School of Electrical and Electronic Engineering LUMINOUS! Centre of Excellence for Semiconductor Lighting & Displays Pedro Ludwig Hernandez Martinez HVDEMIR@ntu.edu.sg Engineering::Electrical and electronic engineering Epsilon-near-zero (ENZ) metamaterials have captivated intensive studies due to the realization of optical properties that enhances the emission of Colloidal Nanocrystals. Colloidal Semiconductor Nanocrystals such as Quantum Dot and Nanoplatelet have raised significant attention in research studies because of their unique properties. The ability to be tuned and control imparted by quantum confinement effects make them promising candidates in the application of chiral sensing, asymmetric catalyst, quantum optics and spintronics. These unique optical properties allow the fabrication of intricate heterostructures that are not possible with other quantum-confined nanostructures. Forster Resonance Energy Transfer (FRET) is a type of Non-Radiative Energy Transfer (NRET) process that happens when the donor transfers energy to an acceptor in close proximity and is widely used in areas of biochemical analysis, environmental monitoring, and disease diagnosis. The rate of energy transfer depends on various factors, such as the distance between acceptors and donors, spectral overlap between donor emission and acceptor absorption, fluorescence quantum yield of the donor, dipole orientation and also refractive index of the medium. Bachelor of Engineering (Electrical and Electronic Engineering) 2021-06-11T05:45:22Z 2021-06-11T05:45:22Z 2021 Final Year Project (FYP) Farah Amirah Mohd Faizal (2021). Numerical studies of plasmonically coupled spherical nanoparticles via epsilon-near-zero metamaterials. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/149953 https://hdl.handle.net/10356/149953 en A2081-201 application/pdf Nanyang Technological University
spellingShingle Engineering::Electrical and electronic engineering
Farah Amirah Mohd Faizal
Numerical studies of plasmonically coupled spherical nanoparticles via epsilon-near-zero metamaterials
title Numerical studies of plasmonically coupled spherical nanoparticles via epsilon-near-zero metamaterials
title_full Numerical studies of plasmonically coupled spherical nanoparticles via epsilon-near-zero metamaterials
title_fullStr Numerical studies of plasmonically coupled spherical nanoparticles via epsilon-near-zero metamaterials
title_full_unstemmed Numerical studies of plasmonically coupled spherical nanoparticles via epsilon-near-zero metamaterials
title_short Numerical studies of plasmonically coupled spherical nanoparticles via epsilon-near-zero metamaterials
title_sort numerical studies of plasmonically coupled spherical nanoparticles via epsilon near zero metamaterials
topic Engineering::Electrical and electronic engineering
url https://hdl.handle.net/10356/149953
work_keys_str_mv AT farahamirahmohdfaizal numericalstudiesofplasmonicallycoupledsphericalnanoparticlesviaepsilonnearzerometamaterials