Numerical study of ultra-broadband wide-angle absorber

This paper proposes an ultra-broadband absorber numerically demonstrated with the finite-difference-time-domain method (FDTD). The absorber is composed of a bottom layer of refractory metal tungsten (W), an intermediate dielectric layer of aluminum trioxide (Al2O3), and a top layer of refractory met...

Full description

Bibliographic Details
Main Authors: Shengxi Jiao, Yu Li, Hanrui Yang, Shibo Xu
Format: Article
Language:English
Published: Elsevier 2021-05-01
Series:Results in Physics
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2211379721002989
id doaj-f692f78bc32c4075b222864d8efccb95
record_format Article
spelling doaj-f692f78bc32c4075b222864d8efccb952021-05-06T04:23:58ZengElsevierResults in Physics2211-37972021-05-0124104146Numerical study of ultra-broadband wide-angle absorberShengxi Jiao0Yu Li1Hanrui Yang2Shibo Xu3School of Automation Engineering, Northeast Electric Power University, Jilin 132012, ChinaCorresponding author.; School of Automation Engineering, Northeast Electric Power University, Jilin 132012, ChinaSchool of Automation Engineering, Northeast Electric Power University, Jilin 132012, ChinaSchool of Automation Engineering, Northeast Electric Power University, Jilin 132012, ChinaThis paper proposes an ultra-broadband absorber numerically demonstrated with the finite-difference-time-domain method (FDTD). The absorber is composed of a bottom layer of refractory metal tungsten (W), an intermediate dielectric layer of aluminum trioxide (Al2O3), and a top layer of refractory metal titanium (Ti) nanodisks, which are arranged periodically and symmetrically in an elliptical array. The optimization results show that the average absorptivity of the designed absorber is 94% within the wavelength range of 500 ~ 1800 nm with an absorption bandwidth at 1300 nm, which can reach 100% at 1200 nm. It was further found that the perfect absorption and broadband absorption performance is revealed by the coupling of surface plasmon resonance (SPR) and local surface plasmon resonance (LSPR) by analyzing the distribution of electromagnetic fields. The designed absorber with polarization insensitivity and wide angle characteristics is simple and easy to manufacture, which can be applied in many fields including solar absorbers, photodetectors and optical imaging.http://www.sciencedirect.com/science/article/pii/S2211379721002989Plasmon resonanceUltra-broadbandFDTDAbsorberMetamaterial
collection DOAJ
language English
format Article
sources DOAJ
author Shengxi Jiao
Yu Li
Hanrui Yang
Shibo Xu
spellingShingle Shengxi Jiao
Yu Li
Hanrui Yang
Shibo Xu
Numerical study of ultra-broadband wide-angle absorber
Results in Physics
Plasmon resonance
Ultra-broadband
FDTD
Absorber
Metamaterial
author_facet Shengxi Jiao
Yu Li
Hanrui Yang
Shibo Xu
author_sort Shengxi Jiao
title Numerical study of ultra-broadband wide-angle absorber
title_short Numerical study of ultra-broadband wide-angle absorber
title_full Numerical study of ultra-broadband wide-angle absorber
title_fullStr Numerical study of ultra-broadband wide-angle absorber
title_full_unstemmed Numerical study of ultra-broadband wide-angle absorber
title_sort numerical study of ultra-broadband wide-angle absorber
publisher Elsevier
series Results in Physics
issn 2211-3797
publishDate 2021-05-01
description This paper proposes an ultra-broadband absorber numerically demonstrated with the finite-difference-time-domain method (FDTD). The absorber is composed of a bottom layer of refractory metal tungsten (W), an intermediate dielectric layer of aluminum trioxide (Al2O3), and a top layer of refractory metal titanium (Ti) nanodisks, which are arranged periodically and symmetrically in an elliptical array. The optimization results show that the average absorptivity of the designed absorber is 94% within the wavelength range of 500 ~ 1800 nm with an absorption bandwidth at 1300 nm, which can reach 100% at 1200 nm. It was further found that the perfect absorption and broadband absorption performance is revealed by the coupling of surface plasmon resonance (SPR) and local surface plasmon resonance (LSPR) by analyzing the distribution of electromagnetic fields. The designed absorber with polarization insensitivity and wide angle characteristics is simple and easy to manufacture, which can be applied in many fields including solar absorbers, photodetectors and optical imaging.
topic Plasmon resonance
Ultra-broadband
FDTD
Absorber
Metamaterial
url http://www.sciencedirect.com/science/article/pii/S2211379721002989
work_keys_str_mv AT shengxijiao numericalstudyofultrabroadbandwideangleabsorber
AT yuli numericalstudyofultrabroadbandwideangleabsorber
AT hanruiyang numericalstudyofultrabroadbandwideangleabsorber
AT shiboxu numericalstudyofultrabroadbandwideangleabsorber
_version_ 1721457344521437184