Plasmonic Refractive Index and Temperature Sensor Based on Graphene and LiNbO3

被引:27
作者
Irfan, Muhammad [1 ]
Khan, Yousuf [1 ]
Rehman, Atiq Ur [1 ]
Butt, Muhammad A. [2 ]
Khonina, Svetlana N. [3 ,4 ]
Kazanskiy, Nikolay L. [3 ,4 ]
机构
[1] Balochistan Univ Informat Technol Engn & Manageme, Dept Elect Engn, Nanophoton Res Grp, Quetta 87300, Pakistan
[2] Warsaw Univ Technol, Inst Microelect & Optoelect, Koszykowa 75, PL-00662 Warsaw, Poland
[3] Samara Natl Res Univ, Dept Tech Cybernet, Samara 443086, Russia
[4] IPSI RAS Branch FSRC Crystallog & Photon RAS, Samara 443001, Russia
关键词
graphene for sensing; lithium niobate; refractive index sensor; temperature sensor; sensitivity; plasmonic sensor; RESONANCE; SENSITIVITY;
D O I
10.3390/s22207790
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
A high-efficiency dual-purpose plasmonic perfect absorber sensor based on LiNbO3 and graphene layers was investigated in this paper for the refractive index and thermal sensing. The sensor design was kept simple for easy fabrication, comprising a LiNbO3 substrate with a quartz layer, thin layer of graphene, four gold nanorods, and a nanocavity in each unit cell. The nanocavity is located in the middle of the cell to facilitate the penetration of EM energy to the subsurface layers. The proposed sensor design achieved an output response of 99.9% reflection, which was easy to detect without having any specialized conditions for operability. The performance of the device was numerically investigated for the biomedical refractive index range of 1.33 to 1.40, yielding a sensitivity value of 981 nm/RIU with a figure-of-merit of 61.31 RIU-1. By including an additional polydimethylsiloxane polymer functional layer on the top, the device was also tested as a thermal sensor, which yielded a sensitivity level of -0.23 nm/degrees C.
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页数:12
相关论文
共 49 条
[31]  
LiNbO3 Substrate for Research & Development, LINBO3 SUBSTRATE RES
[32]   The mechanical properties of the rubber elastic polymer polydimethylsiloxane for sensor applications [J].
Lotters, JC ;
Olthuis, W ;
Veltink, PH ;
Bergveld, P .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 1997, 7 (03) :145-147
[33]   Different Plasmon Sensing Behavior of Silver and Gold Nanorods [J].
Mahmoud, Mahmoud A. ;
El-Sayed, Mostafa A. .
JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2013, 4 (09) :1541-1545
[34]  
McGrath M.J., 2013, Sensor technologies: healthcare, wellness and environmental applications, DOI 10.1007/978-1-4302-6014-12
[35]  
Miyazaki C.M., 2017, Nanocharacterization Tech
[36]   Multi-band MIM refractive index biosensor based on Ag-air grating with equivalent circuit and T-matrix methods in near-infrared region [J].
Nejat, Mohamad ;
Nozhat, Najmeh .
SCIENTIFIC REPORTS, 2020, 10 (01)
[37]   Graphene-based metasurface solar absorber design with absorption prediction using machine learning [J].
Parmar, Juveriya ;
Patel, Shobhit K. ;
Katkar, Vijay .
SCIENTIFIC REPORTS, 2022, 12 (01)
[38]   Tunable and highly sensitive graphene-based biosensor with circle/split ring resonator metasurface for sensing hemoglobin/urine biomolecules [J].
Parmar, Juveriya ;
Patel, Shobhit K. .
PHYSICA B-CONDENSED MATTER, 2022, 624
[39]   Photonic crystal resonances for sensing and imaging [J].
Pitruzzello, Giampaolo ;
Krauss, Thomas F. .
JOURNAL OF OPTICS, 2018, 20 (07)
[40]  
Radu Barsan, PHOTONIC SENSORS HEL