Terahertz Refractive Index and Temperature Dual-Parameter Sensor Based on Surface Plasmon Resonance in Two-Channel Photonic Crystal Fiber

被引:0
|
作者
Wang, Doudou [1 ]
Guo, Wenchuan [1 ]
Zou, Yizu [1 ]
Ma, Tian [2 ]
Wang, Weifeng [2 ]
Chen, Guoxiang [3 ]
机构
[1] Xian Univ Sci & Technol, Coll Sci, Xian 710054, Peoples R China
[2] Xian Univ Sci & Technol, Coll Safety Sci & Engn, Xian 710054, Peoples R China
[3] Xian Shiyou Univ, Coll Sci, Xian 710065, Peoples R China
基金
中国国家自然科学基金;
关键词
terahertz; surface plasmon resonance; graphene; refractive index sensor; temperature sensor;
D O I
10.3390/s24196225
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
A terahertz photonic crystal fiber with two sensing channels was designed. Graphene coated on the micro-grooves in the cladding was used as plasma material to introduce tunability. The dispersion relation, mode coupling, and sensing characteristics of the fiber were studied using the finite element method. Ultrahigh sensitivity of 2.014 THz/RIU and 0.734 GHz/degrees C were obtained for analytes with refractive index in the range of 1.33 to 1.4 and environment temperature in the range of 10-60 degrees C, respectively. Refractive index resolution can reach the order of 10-5. The dual parameter simultaneous detection, dynamic tunable characteristics, and working in the low-frequency range of terahertz enable the designed photonic crystal fiber to have application prospects in the field of biosensing.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Refractive index sensor with extensive detection range using photonic crystal fiber based on surface plasmon resonance
    Kumari, Sindhu
    Prajapati, Yogendra Kumar
    JOURNAL OF OPTICS-INDIA, 2024,
  • [32] Surface Plasmon Resonance Sensor Based on Dual-core Photonic Crystal Fiber for Low Refractive Index Detection in Mid-infrared Spectrum
    Hao Dan
    Wang Jian-shuai
    Xie Yu-heng
    Zhu Ke
    Xue Zhuang-zhuang
    ACTA PHOTONICA SINICA, 2020, 49 (06)
  • [33] Design of surface plasmon resonance based both side polished photonic crystal fiber for highly efficient refractive index sensor
    Ramani, Umang
    Kumar, Hemant
    Singh, Bipin K.
    Pandey, Praveen C.
    OPTIK, 2021, 248
  • [34] Dual-core-enhanced surface plasmon resonance for sensing high refractive index liquid based on photonic crystal fiber
    Xia, Yundan
    Bi, Kaiyan
    Duan, Yushuo
    Shi, Meijie
    Liu, Exian
    PHOTONICS AND NANOSTRUCTURES-FUNDAMENTALS AND APPLICATIONS, 2023, 57
  • [35] A novel photonic crystal fiber refractive index sensor with ultra wide detection range based on surface plasmon resonance effect
    Qu, Yuwei
    Yuan, Jinhui
    Qiu, Shi
    Zhou, Xian
    Yan, Binbin
    Wu, Qiang
    Liu, Bin
    Wang, Kuiru
    Sang, Xinzhu
    Long, Keping
    Yu, Chongxiu
    OPTIK, 2022, 262
  • [36] Rectangular-Shape Cladding-Based Photonic Crystal Fiber Surface Plasmon Resonance-Based Refractive Index Sensor
    Ramani, Umang
    Kumar, Hemant
    Kumar, Raj
    Singh, Bipin K. K.
    Pandey, Praveen C. C.
    PLASMONICS, 2023, 18 (03) : 921 - 929
  • [37] High Sensitivity Refractive Index and Temperature Sensor Based on D-Type Photonic Crystal Fiber Using Surface Plasmon Resonance
    Yang, Ziqin
    Ruan, Juan
    Li, Xin
    Tang, Rui
    ECS JOURNAL OF SOLID STATE SCIENCE AND TECHNOLOGY, 2024, 13 (12)
  • [38] Simultaneous measurement of refractive index and temperature of seawater based on surface plasmon resonance in a dual D-type photonic crystal fiber
    Zhang, Yingyue
    Chen, Hailiang
    Wang, Mingyue
    Liu, Yundong
    Fan, Xiaoya
    Chen, Qiang
    Wu, Biao
    MATERIALS RESEARCH EXPRESS, 2021, 8 (08)
  • [39] Surface plasmon resonance sensor based on a D-shaped photonic crystal fiber for high and low refractive index detection
    Zhang, Shuhuan
    Guo, Ying
    Cheng, Tonglei
    Li, Shuguang
    Li, Jianshe
    OPTIK, 2020, 212
  • [40] Research Progress of Photonic Crystal Fiber Refractive Index Sensors Based on Surface Plasmon Resonance Effect
    Fan Zhenkai
    Zhang Zichao
    Wang Baozhu
    Wang Yingying
    Zhao Rongjia
    LASER & OPTOELECTRONICS PROGRESS, 2019, 56 (07)