Design and Investigation of a High-Performance Quartz-Based SAW Temperature Sensor

被引:0
|
作者
Jiang, Jianfei [1 ]
机构
[1] Zhejiang Univ, Coll Biomed Engn & Instrument Sci, Hangzhou 310027, Peoples R China
关键词
surface acoustic wave; temperature sensor; coupling-of-modes; quartz; SIMULATION; WIRELESS;
D O I
10.3390/mi15111349
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
In this work, a surface acoustic wave (SAW) temperature sensor based on a quartz substrate was designed and investigated. Employing the Coupling-of-Modes (COM) model, a detailed analysis was conducted on the effects of the number of interdigital transducers (IDTs), the number of reflectors, and their spacing on the performance of the SAW device. The impact of the transversal mode of quartz SAWs on the device was subsequently examined using the finite element method (FEM). The simulation results indicate that optimizing these structural parameters significantly enhances the sensor's sensitivity and frequency stability. SAW devices with optimal structural parameters were fabricated, and their resonant frequencies were tested across a temperature range of 25-150 degrees C. Experimental results demonstrate that the SAW temperature sensor maintains high performance stability and data reliability throughout the entire temperature range, achieving a Bode-Q of 7700. Furthermore, the sensor exhibits excellent linearity and repeatability. An analysis of the sensor's response under varying temperature conditions reveals a significant temperature dependency on its Temperature Coefficient of Frequency (TCF). This feature suggests that the sensor possesses potential advantages for applications in industrial process control and environmental monitoring.
引用
收藏
页数:13
相关论文
共 50 条
  • [1] Choice of Quartz Cut for Sensitive Wireless SAW Temperature Sensor
    Shvetsov, Alexander
    Zhgoon, Sergei
    Antsev, Ivan
    Bogoslovsky, Sergei
    Sapozhnikov, Gennadiy
    Trokhimets, Konstantin
    Derkach, Mikhail
    2014 IEEE INTERNATIONAL ULTRASONICS SYMPOSIUM (IUS), 2014, : 1505 - 1508
  • [2] The Investigation of High-Temperature SAW Oxygen Sensor Based on ZnO Films
    Shu, Lin
    Wang, Xuemin
    Yan, Dawei
    Fan, Long
    Wu, Weidong
    MATERIALS, 2019, 12 (08)
  • [3] High-performance temperature sensor based on silver nanowires
    Li, Shanlin
    Liu, Danmin
    Tian, Nan
    Liang, Yuntian
    Gao, Chunlang
    Wang, Shaobo
    Zhang, Yongzhe
    MATERIALS TODAY COMMUNICATIONS, 2019, 20
  • [4] OPTIMAL DESIGN ON SAW STRAIN SENSOR AT HIGH-TEMPERATURE
    Fan, Shu-yao
    Wang, Wen
    Li, Xue-ling
    PROCEEDINGS OF THE 2019 14TH SYMPOSIUM ON PIEZOELECTRCITY, ACOUSTIC WAVES AND DEVICE APPLICATIONS (SPAWDA19), 2019, : 514 - 518
  • [5] Design and Implement of High Performance Temperature Sensor Based on Computer
    Zhang, Jianbing
    Wei, Zhang
    JOURNAL OF NANOELECTRONICS AND OPTOELECTRONICS, 2024, 19 (10) : 1036 - 1041
  • [6] A Symmetrical Quartz-Based Magnetoelectric Sensor for Pico-Tesla Magnetic Field Detection
    Sun, Changxing
    Yang, Wenrong
    Zhang, Yumeng
    SYMMETRY-BASEL, 2022, 14 (10):
  • [7] Test and Analysis of SAW High Temperature Strain Sensor Based on Langasite
    Yan, Xiawen
    Tan, Qiulin
    Li, Xiangrong
    Xue, Tao
    Li, Meipu
    IEEE SENSORS JOURNAL, 2022, 22 (13) : 12622 - 12628
  • [8] X-ray diffraction investigation of high-temperature SAW-sensor based on LGS crystal
    Sakharov, S.
    Roshchupkin, D.
    Emelin, E.
    Irzhak, D.
    Buzanov, O.
    Zabelin, A.
    EUROSENSORS XXV, 2011, 25
  • [9] Langasite-based SAW high-temperature vibration sensor with temperature decoupling
    Zhang, Juan
    Cheng, Wenhua
    Wang, Hao
    Zhang, Lei
    Li, Xiangrong
    Ma, Hongshuai
    Pang, Junqi
    Tan, Qiulin
    SCIENCE CHINA-TECHNOLOGICAL SCIENCES, 2024, 67 (06) : 1946 - 1956
  • [10] Bulk GaN-based SAW resonators with high quality factors for wireless temperature sensor
    Lv, Hongrui
    Shi, Xianglong
    Ai, Yujie
    Liu, Zhe
    Lin, Defeng
    Jia, Lifang
    Cheng, Zhe
    Yang, Jie
    Zhang, Yun
    JOURNAL OF SEMICONDUCTORS, 2022, 43 (11)