Perfect Dual-Band Absorber Based on Plasmonic Effect with the Cross-Hair/Nanorod Combination

被引:76
作者
Chau, Yuan-Fong Chou [1 ]
Chao, Chung-Ting Chou [2 ]
Huang, Hung Ji [3 ]
Kooh, Muhammad Raziq Rahimi [1 ]
Kumara, N. T. R. N. [1 ]
Lim, Chee Ming [1 ]
Chiang, Hai-Pang [2 ,4 ]
机构
[1] Univ Brunei Darussalam, Ctr Adv Mat & Energy Sci, Gadong 1410, Brunei
[2] Natl Taiwan Ocean Univ, Dept Optoelect & Mat Technol, Keelung 20224, Taiwan
[3] Natl Appl Res Labs, Taiwan Instrument Res Inst, Hsinchu 300, Taiwan
[4] Acad Sinica, Inst Phys, Taipei 115, Taiwan
关键词
plasmonic effect; localized plasmon modes; dual-band plasmonic perfect absorber; absorptance peaks; plasmonic sensor; BROAD-BAND; OPTICAL-PROPERTIES; HIGH-SENSITIVITY; CIRCUIT MODEL; WAVE-GUIDE; RESONANCE; SILVER; LIGHT; GOLD; METAMATERIALS;
D O I
10.3390/nano10030493
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Plasmonic effect using a cross-hair can convey strongly localized surface plasmon modes among the separated composite nanostructures. Compared to its counterpart without the cross-hair, this characteristic has the remarkable merit of enhancing absorptance at resonance and can make the structure carry out a dual-band plasmonic perfect absorber (PPA). In this paper, we propose and design a novel dual-band PPA with a gathering of four metal-shell nanorods using a cross-hair operating at visible and near-infrared regions. Two absorptance peaks at 1050 nm and 750 nm with maximal absorptance of 99.59% and 99.89% for modes 1 and 2, respectively, are detected. High sensitivity of 1200 nm refractive unit (1/RIU), figure of merit of 26.67 and Q factor of 23.33 are acquired, which are very remarkable compared with the other PPAs. In addition, the absorptance in mode 1 is about nine times compared to its counterpart without the cross-hair. The proposed structure gives a novel inspiration for the design of a tunable dual-band PPA, which can be exploited for plasmonic sensor and other nanophotonic devices.
引用
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页数:15
相关论文
共 107 条
[1]   A Short Review on the Role of the Metal-Graphene Hybrid Nanostructure in Promoting the Localized Surface Plasmon Resonance Sensor Performance [J].
Alharbi, Raed ;
Irannejad, Mehrdad ;
Yavuz, Mustafa .
SENSORS, 2019, 19 (04)
[2]   Cavity-enhanced localized plasmon resonance sensing [J].
Ameling, Ralf ;
Langguth, Lutz ;
Hentschel, Mario ;
Mesch, Martin ;
Braun, Paul V. ;
Giessen, Harald .
APPLIED PHYSICS LETTERS, 2010, 97 (25)
[3]   Graphene-based optical photodetector exploiting hybrid plasmonic waveguide to enhance photo-thermoelectric current [J].
Amirhosseini, S. A. ;
Safian, R. .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2017, 50 (33)
[4]  
[Anonymous], 2018, ACS OMEGA, DOI [DOI 10.1021/ACSOMEGA.8B00362, DOI 10.1021/acsomega.8b00362]
[5]  
[Anonymous], J PHYS D
[6]  
[Anonymous], ADV PHOTONICS
[7]  
[Anonymous], 2019, NANOMATERIALS BASEL, DOI DOI 10.3390/NANO9121691
[8]   Generalized circuit model for coupled plasmonic systems [J].
Benz, Felix ;
de Nijs, Bart ;
Tserkezis, Christos ;
Chikkaraddy, Rohit ;
Sigle, Daniel O. ;
Pukenas, Laurynas ;
Evans, Stephen D. ;
Aizpurua, Javier ;
Baumberg, Jeremy J. .
OPTICS EXPRESS, 2015, 23 (26) :33255-33269
[9]   Grating-coupled transmission-type surface plasmon resonance sensors based on dielectric and metallic gratings [J].
Byun, Kyung Min ;
Kim, Sung June ;
Kim, Donghyun .
APPLIED OPTICS, 2007, 46 (23) :5703-5708
[10]   Tunable plasmonic resonance absorption characteries-tics in periodic H-shaped graphene arrays [J].
Cen, Chunlian ;
Lin, Hang ;
Liang, Cuiping ;
Huang, Jing ;
Chen, Xifang ;
Yi, Zao ;
Tang, Yongjian ;
Duan, Tao ;
Xu, Xibin ;
Xiao, Shuyuan ;
Yi, Yougen .
SUPERLATTICES AND MICROSTRUCTURES, 2018, 120 :427-435