High-temperature gas sensors based on proton-conducting ceramic oxides. A brief review

被引:3
|
作者
Starostin, George [1 ,2 ]
Volkov, Alexander N. [1 ]
Kalyakin, Anatoly S. [1 ]
Medvedev, Dmitry A. [1 ,2 ]
机构
[1] Inst High Temp Electrochem, Lab Electrochem Devices Based Solid Oxide Proton E, Ekaterinburg 620066, Russia
[2] Ural Fed Univ, Hydrogen Energy Lab, Ekaterinburg 620002, Russia
关键词
Perovskite; Proton transport; Sensors; Electrochemical analysis; Hydrogen detection; DENSE DIFFUSION BARRIER; YB-DOPED SRCEO3; CHEMICAL-STABILITY; HYDROGEN SENSOR; ELECTROLYTE MATERIALS; SOLID-ELECTROLYTE; HUMIDITY SENSORS; OXYGEN; PROGRESS; CELLS;
D O I
10.1016/j.ceramint.2024.07.134
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Proton-conducting ceramic oxides represent a promising class of materials for a range of high-temperature applications. Their excellent proton transport capabilities rival those of classical oxygen-ionic conductors, offering a basis for the design of protonic ceramic fuel cells (PCFCs) and protonic ceramic electrolysis cells (PCECs) with high performance and efficiency at temperatures ranging from 400 to 700 degrees C. Nevertheless, proton-conducting ceramic oxides can also be employed as electrolytes for solid-state gas sensors, which are utilized for a variety of analytical purposes, including electrochemical analysis of hydrogen-, ammonia-, oxygen-, or even carbon dioxide-containing gas mixtures. In this review, we present the recent (ten-year) achievements in the R&D field of electrochemical solid-state sensors based on proton-conducting ceramic electrolytes. Along with discussion of their operation principles, the specific functions (sensitivity, response time, selectivity) are analyzed in detail. This work therefore represents a concise overview of the application of proton-conducting electrolyte materials for in-situ electrochemical analysis provided at elevated temperatures.
引用
收藏
页码:37449 / 37459
页数:11
相关论文
共 50 条
  • [21] Proton-Conducting Ceramics Based on Barium Hafnate and Cerate Doped with Zirconium, Yttrium, and Ytterbium Oxides for Fuel Cell Electrolytes
    M. V. Kalinina
    T. L. Simonenko
    M. Yu. Arsentiev
    N. Yu. Fedorenko
    P. A. Tikhonov
    O. A. Shilova
    Inorganic Materials: Applied Research, 2021, 12 : 1265 - 1270
  • [22] Proton-Conducting Ceramics Based on Barium Hafnate and Cerate Doped with Zirconium, Yttrium, and Ytterbium Oxides for Fuel Cell Electrolytes
    Kalinina, M., V
    Simonenko, T. L.
    Arsentiev, M. Yu
    Fedorenko, N. Yu
    Tikhonov, P. A.
    Shilova, O. A.
    INORGANIC MATERIALS-APPLIED RESEARCH, 2021, 12 (05) : 1265 - 1270
  • [23] Electrochemical sensors based on proton-conducting electrolytes for determination of concentration and diffusion coefficient of CO2 in inert gases
    Kalyakin, Anatoly S.
    Medvedev, Dmitry A.
    Volkov, Alexander N.
    CHEMICAL ENGINEERING SCIENCE, 2021, 229
  • [24] Materials and Sensing Mechanisms for High-Temperature Pressure Sensors: A Review
    Chen, Yankun
    Xu, Qian
    Zhang, Xiuqin
    Kuang, Minxuan
    IEEE SENSORS JOURNAL, 2023, 23 (22) : 26910 - 26924
  • [25] A Review of Proton-Conducting Electrolytes for Efficient Low-Temperature Solid Oxide Fuel Cells: Progress, Challenges, and Perspectives
    Rehman, Javed
    Hanif, Muhammad Bilal
    Khan, Muhammad Zubair
    Ullah, Mohib
    Starostina, Inna A.
    Muhammad, Maria Taj
    Li, Zhipeng
    ENERGY & FUELS, 2024, 38 (23) : 22637 - 22665
  • [26] Exploring Mixed Protonic/Electronic Conducting Oxides as Cathode Materials for Intermediate Temperature SOFCs Based on Proton Conducting Electrolytes
    Fabbri, Emiliana
    Markus, Isaac
    Bi, Lei
    Pergolesi, Daniele
    Traversa, Enrico
    SOLID OXIDE FUEL CELLS 12 (SOFC XII), 2011, 35 (01): : 2305 - 2311
  • [27] Conductometric gas sensors based on metal oxides modified with gold nanoparticles: a review
    Korotcenkov, Ghenadii
    Brinzari, Vladimir
    Cho, Beong K.
    MICROCHIMICA ACTA, 2016, 183 (03) : 1033 - 1054
  • [28] Conductometric gas sensors based on metal oxides modified with gold nanoparticles: a review
    Ghenadii Korotcenkov
    Vladimir Brinzari
    Beong K. Cho
    Microchimica Acta, 2016, 183 : 1033 - 1054
  • [29] Response Enhancement in High-Temperature H2S-Treated Metal Oxide Gas Sensors
    Chen, Zijun
    Liu, Yu
    Liu, Rongyue
    Chen, Yulong
    Liu, Hongjun
    Cheng, Xing
    ACS SENSORS, 2024, 9 (08): : 3979 - 3985
  • [30] Structural and transport properties of lanthanum tungstate with high La/W ratio: Suitability for proton-conducting solid oxide fuel cells operating at intermediate temperature
    Kojo, Gen
    Tsukimura, Reina
    Otomo, Junichiro
    SOLID STATE IONICS, 2017, 306 : 89 - 96