An ultracompact refractive index gas-sensor based on photonic crystal microcavity

被引:8
|
作者
Wang, Xiaoling [1 ,2 ]
Lu, Naiguang [2 ]
Zhu, Jun [3 ]
Jin, Guofan [3 ]
机构
[1] Beijing Univ Posts & Telecommun, Sch Elect Engn, Beijing 100876, Peoples R China
[2] Beijing Inst Machinery, Dept Elect & Informat, Beijing 100085, Peoples R China
[3] Tsinghua Univ, State Key Lab Precis Measurement Technol & Instru, Beijing 100084, Peoples R China
来源
NANOPHOTONICS, NANOSTRUCTURE, AND NANOMETROLOGY II | 2008年 / 6831卷
关键词
microcavity; waveguide; refractive index; linear;
D O I
10.1117/12.756233
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
An ultracompact gas-sensor based on the two-dimensional photonic crystal microcavity is presented. The sensor is formed by a point-defect resonant cavity. The transmission spectrums of the sensor with different ambient refractive indices ranging from n = 1.0 to n = 1.01 are calculated. The calculation results show that a change in ambient refractive index of Delta n =1 x 10(-4) is apparent, the sensitivity of the sensor (Delta lambda/Delta n) is achieved with 433nm/RIU(when lattice constant a = 520nm), where RIU means refractive index unit. The properties of the sensor are analyzed and calculated using the plane-wave expansion (PWE) method and simulated using the finite-difference time-domain (FDTD) method. Using the fabry-Perot cavity mode, the performances of the refractive index sensor are analyzed theoretically. The sensor is optimized using the photonic crystal waveguide structure and simulated using the FDTD method. As the small sensing area (similar to 10 mu m(2)) of the device would require only similar to 1 fL sample analyte, these ultracompact gas sensors would be widely used in little sample analyte in gas measurement.
引用
收藏
页数:6
相关论文
共 50 条
  • [41] High sensitivity with wide detection range refractive index sensor based on dual-core photonic crystal fiber
    Wang, Yao
    Yan, Xin
    Cheng, Tonglei
    Li, Shuguang
    JOURNAL OF OPTICS-INDIA, 2022, 51 (02): : 397 - 407
  • [42] A high-performance refractive index sensor based on a triangular-lattice photonic crystal with defect and surface modes
    Cui, Ting
    Liu, Xing
    Zhou, Lin
    Feng, Shuai
    Chen, Xiao
    Guo, Honglian
    Li, Chuanbo
    Wang, Yiquan
    LASER PHYSICS, 2020, 30 (01)
  • [43] Double-core D-type Photonic Crystal Fiber Refractive Index Sensor Based on Grid Coating
    Fang Li-Ming
    Chen He-Ming
    ADVANCED SENSOR SYSTEMS AND APPLICATIONS IX, 2019, 11191
  • [44] Dual-Channel and Dual-Core Plasmonic Sensor–Based Photonic Crystal Fiber for Refractive Index Sensing
    Shengxi Jiao
    Xiaolei Ren
    Hanrui Yang
    Shibo Xu
    Xinzhi Li
    Plasmonics, 2022, 17 : 295 - 304
  • [45] High Sensitivity Photonic Crystal Fiber Refractive Index Sensor with Gold Coated Externally Based on Surface Plasmon Resonance
    Li, Xudong
    Li, Shuguang
    Yan, Xin
    Sun, Dongming
    Liu, Zheng
    Cheng, Tonglei
    MICROMACHINES, 2018, 9 (12):
  • [46] Two-Dimensional Layered Nanomaterial-Based One-Dimensional Photonic Crystal Refractive Index Sensor
    Maurya, Jitendra B.
    Francois, Alexandre
    Prajapati, Yogendra K.
    SENSORS, 2018, 18 (03):
  • [47] High sensitivity with wide detection range refractive index sensor based on dual-core photonic crystal fiber
    Yao Wang
    Xin Yan
    Tonglei Cheng
    Shuguang Li
    Journal of Optics, 2022, 51 : 397 - 407
  • [48] Ultra-sensitive refractive index gas sensor with functionalized silicon nitride photonic circuits
    Antonacci, Giuseppe
    Goyvaerts, Jeroen
    Zhao, Haolan
    Baumgartner, Bettina
    Lendl, Bernhard
    Baets, Roel
    APL PHOTONICS, 2020, 5 (08)
  • [49] Magnetic field sensor based on evanescent wave coupling effect of photonic crystal slab microcavity
    Ge, Daohan
    Chen, Hui
    Jin, Pengfei
    Zhang, Liqiang
    Li, Wei
    Jiao, Jiwei
    JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2021, 527
  • [50] Highly efficient elliptical microcavity refractive index sensor with single detection unit
    Vakili, Mahsa
    Noori, Mina
    OPTICAL AND QUANTUM ELECTRONICS, 2019, 51 (03)