Highly conductive and stable electrolytes for solid oxide electrolysis and fuel cells: fabrication, characterisation, recent progress and challenges

IF 5.2 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials Advances Pub Date : 2024-11-26 DOI:10.1039/D4MA00690A
Jing Li, Qiong Cai and Bahman Amini Horri
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Abstract

Hydrogen fuel cells and hydrogen production stand at the forefront of efforts to achieve net-zero emissions. Among these technologies, solid oxide fuel cells (SOFCs) and electrolysers (SOEs) are distinguished as particularly promising for broad practical application, offering superior efficiency, robust stability, cost-effectiveness, and inherent safety. Lowering the operating temperature can significantly facilitate their commercialization by improving the stability and reducing the costs associated with electrodes and the fabrication process. Furthermore, reducing the operating temperature to 600 °C enables the utilization of heat sources from industrial processes, such as steel production or various combustion systems, effectively enhancing energy recycling efficiency. At low and intermediate temperatures, SOFCs and SOECs' performance heavily relies on electrolyte conductivity. Therefore, rationally improving electrolyte conductivity under a relatively low temperature plays an important role in facilitating the widespread application of SOFCs and SOECs on a large scale. Aimed at practical application, this work delivers an extensive review of cutting-edge modification strategies intended to enhance the conductivity of several promising electrolytes and outlines the characterisation methods utilised to assess their properties. It further investigates novel synthesis techniques aimed at reducing the sintering temperature. Moreover, this paper provides a comprehensive analysis and evaluation of electrolytes tailored for large-scale implementation in SOFCs and SOECs.

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固体氧化物电解和燃料电池用高导电性和稳定性电解质:制造、表征、最新进展和挑战
氢燃料电池和制氢站在努力实现净零排放的最前沿。在这些技术中,固体氧化物燃料电池(SOFCs)和电解槽(soe)被认为具有广泛的实际应用前景,具有卓越的效率、强大的稳定性、成本效益和固有的安全性。降低工作温度可以通过提高稳定性和降低与电极和制造过程相关的成本来显著促进其商业化。此外,将操作温度降低到600°C,可以利用来自工业过程的热源,例如钢铁生产或各种燃烧系统,有效提高能源回收效率。在低温和中温条件下,sofc和soec的性能在很大程度上取决于电解质的导电性。因此,在相对低温下合理提高电解质电导率,对sofc和soec的大规模广泛应用具有重要的促进作用。针对实际应用,本研究对旨在提高几种有前途的电解质的导电性的尖端改性策略进行了广泛的回顾,并概述了用于评估其性质的表征方法。进一步探讨了旨在降低烧结温度的新型合成技术。此外,本文还提供了针对sofc和soec大规模实施量身定制的电解质的全面分析和评估。
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来源期刊
Materials Advances
Materials Advances MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
7.60
自引率
2.00%
发文量
665
审稿时长
5 weeks
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