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Solid Oxide Electrolysis of H2O and CO2 to Produce Hydrogen and Low-Carbon Fuels

机译:生产固体氧化物电解水和二氧化碳氢和低碳燃料

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摘要

Solid oxide electrolysis cells (SOECs) including the oxygen ion-conducting SOEC (O-SOEC) and the proton-conducting SOEC (H-SOEC) have been actively investigated as next-generation electrolysis technologies that can provide high-energy conversion efficiencies for H2O and CO2 electrolysis to sustainably produce hydrogen and low-carbon fuels, thus providing higher-temperature routes for energy storage and conversion. Current research has also focused on the promotion of SOEC critical components to accelerate wider practical implementation. Based on these investigations, this perspective will summarize the most recent progress in the optimization of electrolysis performance and long-term stability of SOECs, with an emphasis on material developments, technological approaches and improving strategies, such as nano-composing, surface/interface engineering, doping and in situ exsolution. Existing technical challenges are also analyzed, and future research directions are proposed to achieve SOEC technical maturity and economic feasibility for diverse conversion applications.Graphical AbstractSolid oxide electrolysis cells (SOECs), including oxygen ion-conducting SOEC (O-SOEC) and proton-conducting SOEC (H-SOEC), have been actively investigated as one type of next generation electrolysis technologies with high-energy conversion efficiencies, which provide higher-temperature routes for energy storage and conversion.
机译:固体氧化物电解电池(SOECs)包括氧气ion-conducting SOEC (O-SOEC)和proton-conducting SOEC (H-SOEC)积极研究新一代电解技术能提供高能量转换效率为H2O和二氧化碳电解可持续生产氢和低碳燃料,从而提供对能源储存和温度较高的路线转换。促进SOEC关键组件促进更广泛的实际实现。在这些调查中,这个角度看总结最近的进展电解性能和优化长期稳定的SOECs,强调材料的发展、技术的方法和改善策略,如nano-composing、表面/界面工程、掺杂和原位出溶作用。也分析,和未来的研究方向提出实现SOEC技术成熟度和不同的转换的经济可行性应用程序。电解细胞(SOECs),包括氧气ion-conducting SOEC (O-SOEC)和proton-conducting SOEC (H-SOEC)积极调查作为一个类型的一代电解技术高能量转换效率,为能源提供温度较高的路线存储和转换。

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