New metamaterial as a broadband absorber of sunlight with extremely high absorption efficiency

We present computer simulations on the design and performance of a broadband and extremely highly efficient (∼98%) CMOS-compatible metamaterial nanostructure for solar energy applications. An optimized unit cell of the nanostructure consists of a 300 nm × 300 nm × 100 nm titanium nitride (TiN) base...

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Main Authors: Hussein Akafzade, Suresh C. Sharma
Format: Article
Language:English
Published: AIP Publishing LLC 2020-03-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.5131630
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spelling doaj-f3c03d7cc91640bba0f70f866a6acc122020-11-25T03:00:01ZengAIP Publishing LLCAIP Advances2158-32262020-03-01103035209035209-710.1063/1.5131630New metamaterial as a broadband absorber of sunlight with extremely high absorption efficiencyHussein Akafzade0Suresh C. Sharma1Department of Physics, University of Texas at Arlington, Arlington, Texas 76019, USADepartment of Physics, University of Texas at Arlington, Arlington, Texas 76019, USAWe present computer simulations on the design and performance of a broadband and extremely highly efficient (∼98%) CMOS-compatible metamaterial nanostructure for solar energy applications. An optimized unit cell of the nanostructure consists of a 300 nm × 300 nm × 100 nm titanium nitride (TiN) base covered with 60 nm thick SiO2. A 50 nm high TiN disk of 90 nm radius sits over the SiO2 dielectric. The TiN disk is capped with another disk of HfO2 of 90 nm radius and 30 nm height into which six Au nanoparticles (NPs) are symmetrically placed. A periodic array of such unit cells of 300 nm periodicity covers an underlying solar panel. We investigate the performance of the absorber as functions of wavelength, angle of incidence, and polarization of incident sunlight by utilizing the COMSOL Multiphysics software. We observe an impressive absorption of approximately 98% for normal incidence and the broadband range of wavelengths from 250 nm to 1100 nm. Additionally, the absorption is almost independent of the polarization of light and remains higher than 90% for a wide range of incidence angles.http://dx.doi.org/10.1063/1.5131630
collection DOAJ
language English
format Article
sources DOAJ
author Hussein Akafzade
Suresh C. Sharma
spellingShingle Hussein Akafzade
Suresh C. Sharma
New metamaterial as a broadband absorber of sunlight with extremely high absorption efficiency
AIP Advances
author_facet Hussein Akafzade
Suresh C. Sharma
author_sort Hussein Akafzade
title New metamaterial as a broadband absorber of sunlight with extremely high absorption efficiency
title_short New metamaterial as a broadband absorber of sunlight with extremely high absorption efficiency
title_full New metamaterial as a broadband absorber of sunlight with extremely high absorption efficiency
title_fullStr New metamaterial as a broadband absorber of sunlight with extremely high absorption efficiency
title_full_unstemmed New metamaterial as a broadband absorber of sunlight with extremely high absorption efficiency
title_sort new metamaterial as a broadband absorber of sunlight with extremely high absorption efficiency
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2020-03-01
description We present computer simulations on the design and performance of a broadband and extremely highly efficient (∼98%) CMOS-compatible metamaterial nanostructure for solar energy applications. An optimized unit cell of the nanostructure consists of a 300 nm × 300 nm × 100 nm titanium nitride (TiN) base covered with 60 nm thick SiO2. A 50 nm high TiN disk of 90 nm radius sits over the SiO2 dielectric. The TiN disk is capped with another disk of HfO2 of 90 nm radius and 30 nm height into which six Au nanoparticles (NPs) are symmetrically placed. A periodic array of such unit cells of 300 nm periodicity covers an underlying solar panel. We investigate the performance of the absorber as functions of wavelength, angle of incidence, and polarization of incident sunlight by utilizing the COMSOL Multiphysics software. We observe an impressive absorption of approximately 98% for normal incidence and the broadband range of wavelengths from 250 nm to 1100 nm. Additionally, the absorption is almost independent of the polarization of light and remains higher than 90% for a wide range of incidence angles.
url http://dx.doi.org/10.1063/1.5131630
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