Ultra-Broadband, Omnidirectional, High-Efficiency Metamaterial Absorber for Capturing Solar Energy

被引:8
|
作者
Wu, Jing-Hao [1 ]
Meng, Yan-Long [1 ,2 ,3 ]
Li, Yang [1 ]
Li, Yi [1 ]
Li, Yan-Song [1 ]
Pan, Gui-Ming [1 ]
Kang, Juan [1 ]
Zhan, Chun-Lian [1 ]
Gao, Han [1 ]
Hu, Bo [3 ]
Jin, Shang-Zhong [1 ]
机构
[1] China Jiliang Univ, Coll Opt & Elect Technol, Hangzhou 310018, Peoples R China
[2] Chinese Acad Sci, Changchun Inst Opt Fine Mech & Phys, State Key Lab Appl Opt, Changchun 130033, Peoples R China
[3] Fudan Univ, Postdoctoral Ctr, Dept Elect Engn, Shanghai 200433, Peoples R China
关键词
absorption; ultra-broadband; multilayer; nanostructure; LIGHT-ABSORPTION; VISIBLE-LIGHT; SURFACE; SCATTERING; DESIGN;
D O I
10.3390/nano12193515
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In this study, we investigated an absorber based on a center-aligned tandem nanopillar array for ultra-broadband solar energy harvesting theoretically. A high-efficiency, omnidirectional absorber was obtained by introducing the center-aligned tandem nanopillar array embedded in an Al2O3 dielectric layer. The multi-coupling modes at different wavelengths were interpreted. The strong absorption can be adjusted by changing the radii and heights of nanopillars. According to the simulation results, the average absorptance of the absorber exceeded 94% in the wavelength range from 300 nm to 2000 nm. In addition, the high-efficiency absorption was insensitive to the incident angle and polarization state. The research not only proposed an absorber which possesses a huge potential value for application areas, such as thermal photovoltaic systems, infrared detection, and isotropic absorption sensors, but also pointed out a new way to design an absorber with high efficiency in an ultrabroad wavelength range.
引用
收藏
页数:15
相关论文
共 50 条
  • [41] Photocontrolled ultra-broadband metamaterial absorber around the terahertz regime
    Wu, Guozheng
    Li, Chao
    Wang, Dong
    Gao, Song
    Guo, Haijun
    Chen, Wenya
    Guo, Shijing
    Xiong, Jiaran
    Che, Yue
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2024, 26 (35) : 23144 - 23151
  • [42] Polarization insensitive flexible ultra-broadband terahertz metamaterial absorber
    Song, Zihang
    Ma, Xiaoya
    Jiang, Wenying
    Zhang, Longhui
    Jiang, Mingzhu
    Hu, Fangrong
    Zeng, Lizhen
    APPLIED OPTICS, 2023, 62 (33) : 8905 - 8910
  • [43] Ultra-Broadband Infrared Metamaterial Absorber for Passive Radiative Cooling
    刘彦宁
    翁小龙
    张澎
    李文新
    宫禹
    张丽
    韩天成
    周佩珩
    邓龙江
    Chinese Physics Letters, 2021, 38 (03) : 66 - 71
  • [44] Ultra-broadband microwave metamaterial absorber based on resistive sheets
    Kim, Y. J.
    Yoo, Y. J.
    Hwang, J. S.
    Lee, Y. P.
    JOURNAL OF OPTICS, 2017, 19 (01)
  • [45] Ultra-broadband metamaterial absorber based on the structure of resistive films
    Ling, Xinyan
    Xiao, Zhongyin
    Zheng, Xiaoxia
    Tang, Jingyao
    Xu, Kaikai
    JOURNAL OF ELECTROMAGNETIC WAVES AND APPLICATIONS, 2016, 30 (17) : 2325 - 2333
  • [46] An Ultra-broadband Metamaterial Absorber Based on the Square Split Ring
    Li, Zhouqijun
    Wen, Zheng
    Zhang, Zhiqiang
    Luo, Jirun
    IVEC 2021: 2021 22ND INTERNATIONAL VACUUM ELECTRONICS CONFERENCE, 2021,
  • [47] Ultra-broadband metamaterial absorber for infrared transparency window of the atmosphere
    Li, Ling
    Chen, Hongjie
    Xie, Zhengwei
    Chen, Weidong
    Zhang, Wenpeng
    Liu, Wuming
    PHYSICS LETTERS A, 2019, 383 (36)
  • [48] Ultra-broadband terahertz absorber based on a multilayer graphene metamaterial
    Liu, Ling
    Liu, Wenwen
    Song, Zhengyong
    JOURNAL OF APPLIED PHYSICS, 2020, 128 (09)
  • [49] Ultra-Broadband Infrared Metamaterial Absorber for Passive Radiative Cooling
    Liu, Yan-Ning
    Weng, Xiao-Long
    Zhang, Peng
    Li, Wen-Xin
    Gong, Yu
    Zhang, Li
    Han, Tian-Cheng
    Zhou, Pei-Heng
    Deng, Long-Jiang
    CHINESE PHYSICS LETTERS, 2021, 38 (03)
  • [50] A refractory metamaterial absorber for ultra-broadband, omnidirectional and polarization-independent absorption in the UV-NIR spectrum
    Huang, Yijia
    Liu, Ling
    Pu, Mingbo
    Li, Xiong
    Ma, Xiaoliang
    Luo, Xiangang
    NANOSCALE, 2018, 10 (17) : 8298 - 8303