Broadband Perfect Absorber Based on TiN-Nanocone Metasurface

被引:65
作者
Huo, Dewang [1 ]
Zhang, Jingwen [1 ,2 ]
Wang, Yingce [1 ]
Wang, Chao [1 ]
Su, Hang [1 ]
Zhao, Hua [1 ,2 ]
机构
[1] Harbin Inst Technol, Dept Phys, Inst Modern Opt, Harbin 150001, Heilongjiang, Peoples R China
[2] Key Lab Microopt & Photon Technol Heilongjiang Pr, Harbin 150001, Heilongjiang, Peoples R China
基金
中国国家自然科学基金;
关键词
absorber; metasurface; refractory titanium nitride; thermophotovoltaics; PLASMONICS;
D O I
10.3390/nano8070485
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Based on an integrated array of refractory titanium nitride (TiN), a metasurface perfect absorber (MPA) in the visible-to-near infrared (NIR) band is reported. The systematic and detailed simulation study of the absorption of the MPA is performed with the finite-different time-domain (FDTD) method. Tailoring the structure, the MPA realizes as high an average as 99.6% broadband absorption, ranging from 400 nm to 1500 nm. The broadband perfect absorption can be attributed to localized surface plasmonic resonance (LSPR), excited by the continuous diameter evolution from the apex to the base of the nanocone, and the gap plasmons excited among the nanocones, as well as in the spacer layer at longer wavelengths. Particularly, the coupling of the resonances is essentially behind the broadening of the absorption spectrum. We also evaluated the electric field intensity and polarization-dependence of the nanocone MPA to offer further physical insight into light trapping capability. The MPA shows about 90% average absorption even at an oblique incidence up to 50 degrees, which improves the acceptance capability of light-harvesting system applications. This unique design with the TiN nanocone array/aluminium oxide (Al2O3)/TiN structure shows potential in imminent applications in light trapping and thermophotovoltaics.
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页数:9
相关论文
共 32 条
[11]   Broadband Perfect Absorber with Monolayer MoS2 and Hexagonal Titanium Nitride Nano-disk Array [J].
Huo, Dewang ;
Zhang, Jingwen ;
Wang, Hao ;
Ren, Xiaoxuan ;
Wang, Chao ;
Su, Hang ;
Zhao, Hua .
NANOSCALE RESEARCH LETTERS, 2017, 12
[12]   All-back-contact ultra-thin silicon nanocone solar cells with 13.7% power conversion efficiency [J].
Jeong, Sangmoo ;
McGehee, Michael D. ;
Cui, Yi .
NATURE COMMUNICATIONS, 2013, 4
[13]   Low-Temperature Self-Catalytic Growth of Tin Oxide Nanocones over Large Areas [J].
Jeong, Sangmoo ;
McDowell, Matthew T. ;
Cui, Yi .
ACS NANO, 2011, 5 (07) :5800-5807
[14]   A strong antireflective solar cell prepared by tapering silicon nanowires [J].
Jung, Jin-Young ;
Guo, Zhongyi ;
Jee, Sang-Won ;
Um, Han-Don ;
Park, Kwang-Tae ;
Lee, Jung-Ho .
OPTICS EXPRESS, 2010, 18 (19) :A286-A292
[15]   Magnetic light [J].
Kuznetsov, Arseniy I. ;
Miroshnichenko, Andrey E. ;
Fu, Yuan Hsing ;
Zhang, JingBo ;
Luk'yanchuk, Boris .
SCIENTIFIC REPORTS, 2012, 2
[16]   Refractory Plasmonics with Titanium Nitride: Broadband Metamaterial Absorber [J].
Li, Wei ;
Guler, Urcan ;
Kinsey, Nathaniel ;
Naik, Gururaj V. ;
Boltasseva, Alexandra ;
Guan, Jianguo ;
Shalaev, Vladimir M. ;
Kildishev, Alexander V. .
ADVANCED MATERIALS, 2014, 26 (47) :7959-+
[17]   Plasmonic nanocavity arrays for enhanced efficiency in organic photovoltaic cells [J].
Lindquist, Nathan C. ;
Luhman, Wade A. ;
Oh, Sang-Hyun ;
Holmes, Russell J. .
APPLIED PHYSICS LETTERS, 2008, 93 (12)
[18]   X(3915) and X(4350) as New Members in the P-Wave Charmonium Family [J].
Liu, Xiang ;
Luo, Zhi-Gang ;
Sun, Zhi-Feng .
PHYSICAL REVIEW LETTERS, 2010, 104 (12)
[19]   Alternative Plasmonic Materials: Beyond Gold and Silver [J].
Naik, Gururaj V. ;
Shalaev, Vladimir M. ;
Boltasseva, Alexandra .
ADVANCED MATERIALS, 2013, 25 (24) :3264-3294
[20]  
Palik E.D., 1991, HDB OPTICAL CONSTANT