Materials of solid oxide electrolysis cells for H 2 O and CO 2 electrolysis: A review
Материалы твердооксидных электролизных ячеек для электролиза H2O и CO2: обзор
2023-05-17
SCID: 54.1/b7abdvkh
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CO2 electrolysisH2O electrolysisSOEC materialsmaterial degradationsolid oxide electrolysis cells
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Abstract (AI)
Reliable and economic energy storage technologies are urgently required to ensure a sustainable energy supply. H2 is an energy carrier that can be produced environment-friendly by using renewable power to split H2O via electrochemical cells. This way, electric energy is stored as the chemical energy of H2, and the storage can be large-scale and economical. Among the electrochemical technologies for H2O electrolysis, solid oxide electrolysis cells (SOECs) operated at temperatures above 500 ℃ have the benefits of high energy conversion efficiency and economic feasibility. In addition to H2O electrolysis, SOECs can also be employed for CO2 electrolysis and H2O-CO2 co-electrolysis to produce value-added chemicals of great economic and environmental significance. However, SOEC technology is not yet fully ready for commercial deployment because of the material limitations of the key components, such as electrolytes, air electrodes, and fuel electrodes. As is well known, reactions in SOEC are, in principle, inverse to reactions in solid oxide fuel cells (SOFCs). The component materials of SOECs are currently adopted from SOFC materials. However, their performance stability issues are evident, and need to be overcome by materials development in line with the unique requirements of SOEC materials. Key topics discussed in this review include SOEC critical materials and their optimization, material degradation and its safeguards, future research directions, and commercialization challenges, from both traditional O2--conducting SOEC and H+-conducting SOEC perspectives. It is worthy to believe that H2O or/and CO2 electrolysis by SOECs provides a viable solution for future energy storage and conversion.
Key Findings
1
Commercial deployment remains limited by material challenges in electrolytes, air electrodes, and fuel electrodes, particularly insufficient performance stability.
2
Current SOEC component materials are largely adopted from SOFCs, but require optimization and degradation safeguards tailored to SOEC-specific operating conditions.
3
SOECs can perform H2O electrolysis, CO2 electrolysis, and co-electrolysis, producing hydrogen and value-added chemicals with environmental and economic significance.
4
Solid oxide electrolysis cells operating above 500 ℃ offer high energy-conversion efficiency and potentially economical large-scale energy storage through renewable-powered H2O electrolysis.
5
The review identifies critical materials, degradation mechanisms, protection strategies, and research priorities for both traditional O2−-conducting and H+-conducting SOECs.
Research Object
Materials of solid oxide electrolysis cells (SOECs) for H2O electrolysis, CO2 electrolysis, and H2O–CO2 co-electrolysis
Research Subject
Material limitations, optimization, degradation, safeguards, and performance stability of SOEC electrolytes, air electrodes, and fuel electrodes
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2023-05-17
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