Surface acoustic wave hydrogen gas sensor based on layered structure of palladium/metal-free phthalocyanine

被引:0
|
作者
Institute of Physics, Silesian University of Technology, 2 Krzywoustego St., 44-100 Gliwice, Poland [1 ]
机构
来源
Bull. Pol. Acad. Sci. Tech. Sci. | 2008年 / 2卷 / 133-138期
关键词
Acoustic waves - Glass substrates - Microelectrodes - Acoustic surface wave devices - Gas detectors - Acoustic wave propagation - Chemical sensors - Hydrogen - Deposition;
D O I
暂无
中图分类号
学科分类号
摘要
A layered sensor structure of metal-free phthalocyanine H2PC (∼160 nm) with a very thin film of palladium (Pd20 nm) on the top, has been studied for hydrogen gas-sensing application at relatively low temperatures of about 30C and about 40C The layered structure was obtained by vacuum deposition (first the phthalocyanine Pc and than the Pd film) onto a LiNbO3Y- cut Z-propagating substrate, making use of the Surface Acoustic Wave method, and additionally (in this same technological processes) onto a glass substrate with a planar microelectrode array for simultaneous monitoring of the planar resistance of the layered structure. In such a layered structure we can detect hydrogen in a medium concentration range (from 0.5 to 3% in air) even at about 30C At elevated temperature up to about 40C the differential frequency increases proportionally (almost linearly) to the hydrogen concentration and the response reaches its steady state very quickly. The response times are about 18 s at the lowest 0.5% hydrogen concentration to about 42 s at 4% (defined as reaching 100% of the steady state). In the case of the investigated layered structure a very good correlation has been observed between the two utilized methods - the frequency changes in the SAW method correlate quite well with the decreases of the layered structure resistance.
引用
收藏
相关论文
共 50 条
  • [11] Comparison between conductometric and layered surface acoustic wave hydrogen gas sensors
    Ippolito, SJ
    Kandasamy, S
    Kalantar-zadeh, K
    Wlodarski, W
    Holland, A
    SMART MATERIALS AND STRUCTURES, 2006, 15 (01) : S131 - S136
  • [12] Review of surface acoustic wave-based hydrogen sensor
    Cui, Baile
    Ren, Zixuan
    Wang, Wen
    Cheng, Lina
    Gao, Xu
    Huang, Lintaihui
    Hu, Anyu
    Hu, Fanbing
    Jin, Jing
    SENSORS AND ACTUATORS REPORTS, 2024, 7
  • [13] Hydrogen Gas Sensing Using Palladium-Graphene Nanocomposite Material Based on Surface Acoustic Wave
    Nguyen Hai Ha
    Nguyen Hoang Nam
    Dang Duc Dung
    Nguyen Huy Phuong
    Phan Duy Thach
    Hoang Si Hong
    JOURNAL OF NANOMATERIALS, 2017, 2017
  • [14] Xerographic properties of metal/metal-free phthalocyanine composites in a double-layered photoconductor
    Lee, Jong Dae
    Kim, Hong Bae
    KOREAN JOURNAL OF CHEMICAL ENGINEERING, 2009, 26 (03) : 673 - 678
  • [15] Xerographic properties of metal/metal-free phthalocyanine composites in a double-layered photoconductor
    Jong Dae Lee
    Hong Bae Kim
    Korean Journal of Chemical Engineering, 2009, 26 : 673 - 678
  • [16] Bilayer structure for hydrogen detection in a surface acoustic wave sensor system
    Jakubik, WP
    Urbanczyk, MW
    Kochowski, S
    Bodzenta, J
    SENSORS AND ACTUATORS B-CHEMICAL, 2002, 82 (2-3) : 265 - 271
  • [17] Surface Acoustic Wave Hydrogen sensor with a multilayer structure - preliminary results
    Jakubik, WP
    Urbanczyk, MW
    Nadolski, M
    ACOUSTO-OPTICS AND APPLICATIONS IV, 2001, 4514 : 194 - 200
  • [18] Observation of Metal-free Phthalocyanine Adsorbed on SiC Reconstructed Surface
    Emoto, Satoru
    Isobe, Asuta
    Ikari, Tomonori
    Kawamura, Kazuya
    Kuroki, Shin-ichiro
    Naitoh, Masamichi
    E-JOURNAL OF SURFACE SCIENCE AND NANOTECHNOLOGY, 2022, 20 : 257 - 260
  • [19] SURFACE STATE PARAMETERS OF METAL-FREE PHTHALOCYANINE SINGLE CRYSTALS
    BARBE, DF
    WESTGATE, CR
    JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 1970, 31 (12) : 2679 - &
  • [20] Silicon Nanostructure based Surface Acoustic Wave Gas Sensor
    Asril, Muhammad Izzudin Ahmad
    Hasanl, Mohammed Nazibul
    Yunosl, Yusri Md
    Nafea, Marwan
    Atl, Mohamed Sultan Mohamed
    2022 IEEE SENSORS, 2022,