Please use this identifier to cite or link to this item: http://elar.urfu.ru/handle/10995/131555
Title: Brief Review on High-Temperature Electrochemical Hydrogen Sensors
Authors: Gorbova, E.
Balkourani, G.
Molochas, C.
Sidiropoulos, D.
Brouzgou, A.
Demin, A.
Tsiakaras, P.
Issue Date: 2022
Publisher: MDPI
Citation: Gorbova, E, Balkourani, G, Molochas, C, Sidiropoulos, D, Brouzgou, A, Demin, A & Tsiakaras, P 2022, 'Brief Review on High-Temperature Electrochemical Hydrogen Sensors', Catalysts, Том. 12, № 12, 1647. https://doi.org/10.3390/catal12121647
Gorbova, E., Balkourani, G., Molochas, C., Sidiropoulos, D., Brouzgou, A., Demin, A., & Tsiakaras, P. (2022). Brief Review on High-Temperature Electrochemical Hydrogen Sensors. Catalysts, 12(12), [1647]. https://doi.org/10.3390/catal12121647
Abstract: Hydrogen sensors, especially those operating at high temperatures, are essential tools for the emerging hydrogen economy. Monitoring hydrogen under process conditions to control the reactions for detecting confined species is crucial to the safe, widespread use and public acceptance of hydrogen as fuel. Hydrogen sensors must have a sensitivity ranging from traces of hydrogen (parts per million (ppm)) up to levels near the lower explosive limit (LEL = 4% H2 in the air) for safety reasons. Furthermore, they need to operate in cryogenic, ambient, and high-temperature environments. Herein, emphasis is given to hydrogen sensors based on solid oxide electrolytes (operating at high temperatures), in particular oxygen ion and proton conductors. The review is devoted to potentiometric, amperometric, and combined amperometric-potentiometric hydrogen sensors. Experimental results already reported in the international literature are presented and analyzed to reveal the configuration, principle of operation, and the applied solid electrolytes and electrodes of the high-temperature hydrogen sensors. Additionally, an amperometric sensor able to detect hydrogen and steam in atmospheric air through a two-stage procedure is presented and thoroughly discussed. The discussion reveals that high-temperature hydrogen sensors face different challenges in terms of the electrodes and solid electrolytes to be used, depending on the operating principle of each sensor type. © 2022 by the authors.
Keywords: AMPEROMETRIC SENSOR
DIFFUSION BARRIER
ELECTROCHEMICAL CELL
HYDROGEN AND STEAM DETECTION
LIMITING CURRENT
SOLID OXIDE ELECTROLYTES
URI: http://elar.urfu.ru/handle/10995/131555
Access: info:eu-repo/semantics/openAccess
cc-by
License text: https://creativecommons.org/licenses/by/4.0/
SCOPUS ID: 85144898393
WOS ID: 000902363200001
PURE ID: 33222196
b4844016-13a8-4b3a-b223-b8bced15cfa2
ISSN: 2073-4344
DOI: 10.3390/catal12121647
metadata.dc.description.sponsorship: Hellenic Foundation for Research and Innovation, ΕΛ.ΙΔ.Ε.Κ, (5426, 5869)
Georgia Balkourani thankfully acknowledges the Hellenic Foundation for Research and Innovation (H.F.R.I.) for the funding under the “3rd Call for H.F.R.I. Ph.D. Fellowships” (Fellowship Number: 5869). The research of Costas Molochas was supported by the Hellenic Foundation for Research and Innovation (HFRI) under the 3rd Call for HFRI PhD Fellowships (Fellowship Number: 5426).
Appears in Collections:Научные публикации ученых УрФУ, проиндексированные в SCOPUS и WoS CC

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