Numerical investigation of graphene-based efficient and broadband metasurface for terahertz solar absorber

被引:0
作者
Rajendrasinh Jadeja
Shreyas Charola
Shobhit K. Patel
Juveriya Parmar
Mayurkumar Ladumor
Truong Khang Nguyen
Vigneswaran Dhasarathan
机构
[1] Marwadi University,Department of Electrical Engineering
[2] Marwadi University,Department of Electronics and Communication Engineering
[3] Marwadi University,Department of Physics
[4] Ton Duc Thang University,Division of Computational Physics, Institute for Computational Science
[5] Ton Duc Thang University,Faculty of Electrical and Electronics Engineering
来源
Journal of Materials Science | 2020年 / 55卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Graphene-based efficient metasurface solar absorber is presented. Graphene monolayer sheet is integrated over silicon dioxide dielectric layer to improve the bandwidth and achieve maximum absorption in the visible region from 430 to 770 THz. Simulation results indicate that the average absorption of our graphene-based metasurface absorber is more than 84% in the visible range. The absorber C-shape metasurface top layer placed above the graphene sheet is made up of tungsten material, and bottom layer made up of tungsten material helps in absorbing incoming electromagnetic light. The resonance frequency can be tuned in a wide frequency range by changing different physical parameters of proposed absorbers design. The absorption efficiency results of the proposed design are also compared with previously published similar absorber design to show the improvement of absorption in the proposed design. The proposed design is useful for designing next-generation graphene-based sensors and photovoltaic devices. Purposed graphene-based metasurface absorber can be used as a basic building block of solar energy-harvesting photovoltaic devices.
引用
收藏
页码:3462 / 3469
页数:7
相关论文
共 135 条
[1]  
Zhang K(2017)A review of thermal stability and high temperature-induced ageing mechanisms of solar absorber coatings Renew Sust Energy Rev 67 1282-1299
[2]  
Hao L(2019)Silicon nano-cavity coupled metallic-dielectric colloidal crystals for narrow-band absorbers Opt Mater 91 58-61
[3]  
Du M(2010)Infrared perfect absorber and its application as plasmonic sensor Nano Lett 10 2342-2348
[4]  
Mi J(2017)Tunable Salisbury screen absorber using square lattice of plasmonic nanodisk Plasmonics 12 257-262
[5]  
Wang JN(2016)Metal nano-particles sizing by thermal annealing for the enhancement of surface plasmon effects in thin-film solar cells application Opt Commun 370 85-90
[6]  
Meng JP(2019)Effects of narrowband transport on near-field and far-field thermophotonic conversion J Photonics Energy 9 032714-2122
[7]  
Tang L(2019)Tunable perfect narrow-band absorber based on a metal-dielectric-metal structure Coatings 9 393-46
[8]  
Wu B(2019)Triple narrow-band plasmonic perfect absorber for refractive index sensing applications of optical frequency OSA Contin 2 2113-589
[9]  
Tang P(2010)High-performance optical absorber based on a plasmonic metamaterial Appl Phys Lett 96 251104-41
[10]  
Liu M(2004)A brief intro to metamaterials IEEE Potentials 23 44-162