Wideband optical absorber based on plasmonic metamaterial cross structure

被引:12
作者
Soheilifar, Mohammad Reza [1 ]
机构
[1] Imam Khomyini Univ Nowshahr, Fac Elect Engn Naval Sci, Nowshahr, Iran
关键词
Fano resonance; Plasmonic; Metamaterial; Absorber; FANO RESONANCE; PERFECT ABSORBER; SOLAR-CELLS; SURFACE; METASURFACE; ABSORPTION; ARRAYS; NANOANTENNAS; BIOSENSOR; SENSORS;
D O I
10.1007/s11082-018-1687-6
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The optical absorber with Fano response is valuable for various applications such as solar cells or optical sensors. In this paper, we have modeled an optical plasmonic metamaterial absorber which contains a broken cross as an elementary cell along with four rectangular loads to improve the absorbance and achieve a Fano response within a wide bandwidth at 190-245THz (25%). The bandwidth of the proposed structure is more than conventional metamaterial absorbers. The prototype absorber has a remarkable enhancement in the electric field in comparison with the simple cross model and the reflection value has reduced to -47dB. The parametric studies show how the gap capacitance controls the bandwidth, resonance frequency and the reflection value of the absorber, therefore we can consider this technique as a way to enhance the metamaterial absorber's bandwidth. The proposed structure can be used as an optical refractive index sensor while the Fano line-shape provides a higher figure of merit (FOM) compared with many others. For this structure, the FOM has obtained as 10,660. The Finite Integration Technique with Perfect Boundary Approximation used for the simulation.
引用
收藏
页数:12
相关论文
共 41 条
[31]   Wide-band polarization independent perfect metamaterial absorber based on concentric rings topology for solar cells application [J].
Rufangura, Patrick ;
Sabah, Cumali .
JOURNAL OF ALLOYS AND COMPOUNDS, 2016, 680 :473-479
[32]   Enhanced efficiency of light-trapping nanoantenna arrays for thin-film solar cells [J].
Simovski, Constantin ;
Morits, Dmitry ;
Voroshilov, Pavel ;
Guzhva, Michael ;
Belov, Pavel ;
Kivshar, Yuri .
OPTICS EXPRESS, 2013, 21 (13) :A714-A725
[33]   Spectral shifts in optical nanoantenna-enhanced hydrogen sensors [J].
Tittl, Andreas ;
Kremers, Christian ;
Dorfmueller, Jens ;
Chigrin, Dmitry N. ;
Giessen, Harald .
OPTICAL MATERIALS EXPRESS, 2012, 2 (02) :111-118
[34]   Ultrahigh sensitive plasmonic terahertz detector based on an asymmetric dual-grating gate HEMT structure [J].
Watanabe, Takayuki ;
Tombet, Stephane Boubanga ;
Tanimoto, Yudai ;
Wang, Yuye ;
Minamide, Hiroaki ;
Ito, Hiromasa ;
Fateev, Denis ;
Popov, Viacheslav ;
Coquillat, Dominique ;
Knap, Wojciech ;
Meziani, Yahya ;
Otsuji, Taiichi .
SOLID-STATE ELECTRONICS, 2012, 78 :109-114
[35]   Plasmonic Resonance toward Terahertz Perfect Absorbers [J].
Withayachumnankul, Withawat ;
Shah, Charan Manish ;
Fumeaux, Christophe ;
Ung, Benjamin S. -Y. ;
Padilla, Willie J. ;
Bhaskaran, Madhu ;
Abbott, Derek ;
Sriram, Sharath .
ACS PHOTONICS, 2014, 1 (07) :625-630
[36]   Plasmonic resonance in planer split ring trimer [J].
Xu, Haiqing ;
Li, Hongjian ;
Xiao, Gang .
OPTICS COMMUNICATIONS, 2014, 332 :144-148
[37]   The study of electro-optical sensor based on slotted photonic crystal waveguide [J].
Yang, Daquan ;
Tian, Huiping ;
Ji, Yuefeng .
OPTICS COMMUNICATIONS, 2011, 284 (20) :4986-4990
[38]   Tunable graphene based plasmonic absorber with grooved metal film in near infrared region [J].
Zare, Mohammad Sadegh ;
Nozhat, Najmeh ;
Rashiditabar, Reza .
OPTICS COMMUNICATIONS, 2017, 398 :56-61
[39]   Fano resonance for U-I nano-array independent to the polarization providing bio-sensing applications [J].
Zarrabi, Ferdows B. ;
Bazgir, Maryam ;
Ebrahimi, Sepideh ;
Arezoomand, Afsaneh Saee .
JOURNAL OF ELECTROMAGNETIC WAVES AND APPLICATIONS, 2017, 31 (14) :1444-1452
[40]   Manipulating light polarization with ultrathin plasmonic metasurfaces [J].
Zhao, Yang ;
Alu, Andrea .
PHYSICAL REVIEW B, 2011, 84 (20)