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Hydrogen production at intermediate temperatures with proton conducting ceramic cells: Electrocatalytic activity, durability and energy efficiency

Zheng, Haoyu und Han, Feng und Sata, Noriko und Costa, Rémi (2023) Hydrogen production at intermediate temperatures with proton conducting ceramic cells: Electrocatalytic activity, durability and energy efficiency. Journal of Energy Chemistry, 86, Seiten 436-446. Elsevier. doi: 10.1016/j.jechem.2023.07.030. ISSN 2095-4956.

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Kurzfassung

Proton conducting ceramic cells (PCCs) are an attractive emerging technology operating in the intermediate temperature range of 500 to 700 °C. In this work, we evaluate the production of hydrogen at intermediate temperatures by proton conducting ceramic cell electrolysis (PCCEL). We demonstrate a highperformance steam electrolysis owing to a composite positrode based on BaGd0.8La0.2Co2O6-d (BGLC1082) and BaZr0.5Ce0.4Y0.1O3-d (BZCY541). The high reliability of PCCEL is demonstrated for 1680 h at a current density as high as -0.8 A cm-2 close to the thermoneutral cell voltage at 600 °C. The electrolysis cell showed a specific energy consumption ranging from 54 to 66 kW h kg-1 that is comparable to state-of-the-art low temperature electrolysis technologies, while showing hydrogen production rates systematically higher than commercial solid oxide ceramic cells (SOCs). Compared to SOCs, the results verified the higher performances of PCCs at the relevant operating temperatures, due to the lower activation energy for proton transfer comparing with oxygen ion conduction. However, because of the p-type electronic conduction in protonic ceramics, the energy conversion rate of PCCs is relatively lower in steam electrolysis. The faradaic efficiency of the PCC in electrolysis mode can be increased at lower operating temperatures and in endothermic conditions, making PCCEL a technology of choice to valorize high temperature waste heat from industrial processes into hydrogen. To increase the faradaic efficiency by optimizing the materials, the cell design, or the operating strategy is a key challenge to address for future developments of PCCEL in order to achieve even more superior techno-economic merits.

elib-URL des Eintrags:https://elib.dlr.de/199761/
Dokumentart:Zeitschriftenbeitrag
Titel:Hydrogen production at intermediate temperatures with proton conducting ceramic cells: Electrocatalytic activity, durability and energy efficiency
Autoren:
AutorenInstitution oder E-Mail-AdresseAutoren-ORCID-iDORCID Put Code
Zheng, HaoyuNICHT SPEZIFIZIERTNICHT SPEZIFIZIERTNICHT SPEZIFIZIERT
Han, FengFeng.Han (at) dlr.dehttps://orcid.org/0000-0003-1904-134XNICHT SPEZIFIZIERT
Sata, NorikoNoriko.Sata (at) dlr.dehttps://orcid.org/0000-0002-3103-2051NICHT SPEZIFIZIERT
Costa, Rémiremi.costa (at) dlr.dehttps://orcid.org/0000-0002-3534-1935NICHT SPEZIFIZIERT
Datum:11 August 2023
Erschienen in:Journal of Energy Chemistry
Referierte Publikation:Ja
Open Access:Ja
Gold Open Access:Nein
In SCOPUS:Ja
In ISI Web of Science:Ja
Band:86
DOI:10.1016/j.jechem.2023.07.030
Seitenbereich:Seiten 436-446
Verlag:Elsevier
ISSN:2095-4956
Status:veröffentlicht
Stichwörter:Steam electrolysis Hydrogen production Proton conducting ceramics Intermediate temperature Energy efficiency
HGF - Forschungsbereich:Energie
HGF - Programm:Materialien und Technologien für die Energiewende
HGF - Programmthema:Chemische Energieträger
DLR - Schwerpunkt:Energie
DLR - Forschungsgebiet:E SP - Energiespeicher
DLR - Teilgebiet (Projekt, Vorhaben):E - Elektrochemische Prozesse
Standort: Stuttgart
Institute & Einrichtungen:Institut für Technische Thermodynamik > Elektrochemische Energietechnik
Hinterlegt von: Costa, Dr Rémi
Hinterlegt am:19 Dez 2023 17:25
Letzte Änderung:29 Jan 2024 12:26

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