Multi-bias graphene-based THz super absorber

被引:24
作者
Soltani-Zanjani, Masoud [1 ]
Biabanifard, Sadegh [2 ]
Hemmatiyengejeh, Sirous [3 ]
Soltani, Mohamadreza [4 ]
Sadrnia, Hassan [1 ]
机构
[1] Ferdowsi Univ Mashhad, Dept Biosyst Engn, Mashhad, Razavi Khorasan, Iran
[2] Iran Analog Res Grp, Tehran, Iran
[3] Mohajer Tech & Vocat Coll Isfahan, Esfahan, Iran
[4] Islamic Azad Univ, Tiran Branch, Dept Elect Engn, Tiran, Iran
关键词
Terahertz; THz; Graphene; Circuit model; Multi-bias; Multi-layer;
D O I
10.1016/j.rinp.2021.104326
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The terahertz frequency band becomes a growth platform of various applications from medical imaging to indoor communications. Emerging new materials such as graphene and developing reliable models paved the design way for graphene-based microstructures. This paper proposes a relatively comprehensive design methodology for graphene-based multi-layers structures. The procedure includes forming device geometry, finding graphene patterns, material types, and optimizing control parameters. In this way, a reconfigurable THz wave absorber is introduced. Exploiting a multi bias scheme for a single graphene layer provide opportunity to affect device reaction via bias itself and patterns period simultaneously which increase adjustability of device response. Also using two different graphene patterns turns the device complex regarding design optimizations and simulations. So a well-known and simple circuit representation is used to design the proposed methodology and the proposed device. Knowing equivalent circuit models for the device elements triggers developing an evolutionary algorithm to search for a desirable response. In this context, the paper suggests using a weighted binary matrix in the design process. The matrix determines bias schemes for each layer. Then an evolutionary algorithm optimizes whole biases values. The expectation is more in-depth control over the device behavior via biases values. This is verified by exploited circuit model formulations and Finite Element Method (FEM) as numerical simulation for a unique three layers device.
引用
收藏
页数:12
相关论文
共 18 条
[11]   Analytical Modeling of Graphene Ribbons as Optical Circuit Elements [J].
Khavasi, Amin ;
Rejaei, Behzad .
IEEE JOURNAL OF QUANTUM ELECTRONICS, 2014, 50 (06) :397-403
[12]   Terahertz time-domain spectroscopy for material characterization [J].
Naftaly, Mira ;
Miles, Robert E. .
PROCEEDINGS OF THE IEEE, 2007, 95 (08) :1658-1665
[13]   Reliable design of THz absorbers based on graphene patterns: Exploiting genetic algorithm [J].
Najafi, Alireza ;
Soltani, Mohamadreza ;
Chaharmahali, Iman ;
Biabanifard, Sadegh .
OPTIK, 2020, 203
[14]   The electronic, optical, and thermodynamic properties of borophene from first-principles calculations [J].
Peng, Bo ;
Zhang, Hao ;
Shao, Hezhu ;
Xu, Yuanfeng ;
Zhang, Rongjun ;
Zhua, Heyuan .
JOURNAL OF MATERIALS CHEMISTRY C, 2016, 4 (16) :3592-3598
[15]   Short-range ultra-broadband terahertz communications:: Concepts and perspectives [J].
Piesiewicz, Radoslaw ;
Kleine-Ostmann, Thomas ;
Krumbholz, Norman ;
Mittleman, Daniel ;
Koch, Martin ;
Schoebel, Joerg ;
Kuerner, Thomas .
IEEE ANTENNAS AND PROPAGATION MAGAZINE, 2007, 49 (06) :24-39
[16]  
Taflove A., 2005, Computational Electrodynamics: FiniteDifference Time-Domain Method
[17]   Silicene: Compelling Experimental Evidence for Graphenelike Two-Dimensional Silicon [J].
Vogt, Patrick ;
De Padova, Paola ;
Quaresima, Claudio ;
Avila, Jose ;
Frantzeskakis, Emmanouil ;
Asensio, Maria Carmen ;
Resta, Andrea ;
Ealet, Benedicte ;
Le Lay, Guy .
PHYSICAL REVIEW LETTERS, 2012, 108 (15)
[18]  
Walker C. K., 2015, Terahertz astronomy