Pressure Sensor Based on Optical Resonator in a Compact Plasmonic System

被引:3
作者
Chen, Zhao [1 ,2 ]
Ma, Xinxin [1 ]
Zhang, Shijie [1 ]
Li, Tong [1 ]
Wang, Yilin [1 ]
Hou, Zhi-Ling [3 ]
机构
[1] Beijing Univ Chem Technol, Coll Math & Phys, Beijing 100029, Peoples R China
[2] Shanxi Univ, State Key Lab Quantum Opt & Quantum Opt Devices, Taiyuan 030006, Peoples R China
[3] Beijing Univ Technol, Sch Phys & Optoelect Engn, Beijing 100124, Peoples R China
基金
中国国家自然科学基金;
关键词
Fano resonance; nanophotonics; optical pressure sensor; plasmonic; FANO RESONANCE; TRANSPARENCY; CAVITY;
D O I
10.1109/JSEN.2023.3348534
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
Optical pressure sensors have the advantage of being impervious to electromagnetic interference. However, it remains difficult to explore the quantitative relationship between the optical response and the exerted applied pressure. Here, for the first time, the quantitative relationship between the deformation of optical resonator and the applied pressure and the optical response characteristics of the structure are investigated in detail by finite element method, and an ultracompact optical pressure sensor with a high sensitivity similar to 10.2 nm/MPa is demonstrated. Simulation results show that the maximum deformation of the optical resonator is linearly related to the applied pressure and has a limit value at a fixed input pressure as the range of pressure applied increases. The results also imply that the external force can induce a redshift in the resonance wavelength in addition to generating intriguing phenomena like Fano resonance. These observations contribute to the enhancement and diversification of the optical response within the system. The special features of our suggested structure are applicable in optical property change detection under different pressures, chemical high-pressure experimental measurement, and study of chemical reaction kinetics process.
引用
收藏
页码:4418 / 4423
页数:6
相关论文
共 35 条
[21]   Independently tunable triple Fano resonances based on MIM waveguide structure with a semi-ring cavity and its sensing characteristics [J].
Liu, Xing ;
Li, Jina ;
Chen, Jianfeng ;
Rohimah, Siti ;
Tian, He ;
Wang, Jinfang .
OPTICS EXPRESS, 2021, 29 (13) :20829-20838
[22]  
Liu Y., 2019, INT J NURS PRACT, V25, P1
[23]   Manipulation of light in MIM plasmonic waveguide systems [J].
Lu Hua ;
Wang GuoXi ;
Liu XueMing .
CHINESE SCIENCE BULLETIN, 2013, 58 (30) :3607-3616
[24]   Simultaneous Visualization of a Paraelectric Mn:KNTN Crystal and Measurement of Its Kerr Coefficient by Digital Holographic Interferometry [J].
Lu Qieni ;
Zhao Shuang ;
Dai Haitao ;
Zhang Yimo .
IEEE PHOTONICS JOURNAL, 2014, 6 (01)
[25]  
Luk'yanchuk B, 2010, NAT MATER, V9, P707, DOI [10.1038/NMAT2810, 10.1038/nmat2810]
[26]   Fano resonances in nanoscale structures [J].
Miroshnichenko, Andrey E. ;
Flach, Sergej ;
Kivshar, Yuri S. .
REVIEWS OF MODERN PHYSICS, 2010, 82 (03) :2257-2298
[27]   Gap Plasmon Resonance in a Suspended Plasmonic Nanowire Coupled to a Metallic Substrate [J].
Miyata, Masashi ;
Holsteen, Aaron ;
Nagasaki, Yusuke ;
Brongersma, Mark L. ;
Takahara, Junichi .
NANO LETTERS, 2015, 15 (08) :5609-5616
[28]   Systematic engineering of a nanostructure plasmonic sensing platform for ultrasensitive biomaterial detection [J].
Moradiani, Fatemeh ;
Farmani, Ali ;
Mozaffari, Mohammad Hazhir ;
Seifouri, Mahmood ;
Abedi, Kambiz .
OPTICS COMMUNICATIONS, 2020, 474
[29]   High sensitivity plasmonic refractive index sensing and its application for human blood group identification [J].
Rakhshani, Mohammad Reza ;
Mansouri-Birjandi, Mohammad Ali .
SENSORS AND ACTUATORS B-CHEMICAL, 2017, 249 :168-176
[30]   Cog-shaped refractive index sensor embedded with gold nanorods for temperature sensing of multiple analytes [J].
Rashid, Kazi Sharmeen ;
Tathfif, Infiter ;
Yaseer, Ahmad Azuad ;
Hassan, Md Farhad ;
Sagor, Rakibul Hasan .
OPTICS EXPRESS, 2021, 29 (23) :37541-37554