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用于绿色制氢的高温固体氧化物电解

High Temperature Solid Oxide Electrolysis for Green Hydrogen Production.

作者信息

Liu Hua, Yu Miao, Tong Xiaofeng, Wang Qingjie, Chen Ming

机构信息

Department of Energy Conversion and Storage, Technical University of Denmark, 2800 Kgs. Lyngby, Denmark.

Institute of Energy Power Innovation, North China Electric Power University, Beijing 102206, China.

出版信息

Chem Rev. 2024 Sep 25;124(18):10509-10576. doi: 10.1021/acs.chemrev.3c00795. Epub 2024 Aug 21.

Abstract

Global warming and energy crises have motivated the development of renewable energy and its energy carriers. Green hydrogen is the most promising renewable energy carrier and will be fundamental to future energy conversion and storage systems. Solid Oxide Electrolysis Cells (SOECs) are a promising green hydrogen production technology featuring high electrical efficiency, no noble metal catalyst usage, and reversible operation. This review provides a timely summary of the latest SOEC progress, covering developments at various levels, from cells to stacks to systems. Cell/stack components, configurations, advanced electrode material/fabrication, and novel characterization methods are discussed. Electrochemical and durable performance for each cell/stack configuration is reviewed, focusing on degradation mechanisms and associated mitigation strategies. SOEC system integration with renewable energy and downstream users is outlined, showing flexibility, robustness, scalability, viability, and energy efficiency. Challenges of cost and durability are expected to be overcome by innovation in material, fabrication, production, integration, and operation. Overall, this comprehensive review identifies the SOEC commercialization bottleneck, encourages further technology development, and envisions a future green hydrogen society with net-zero carbon emissions.

摘要

全球变暖和能源危机推动了可再生能源及其能量载体的发展。绿色氢能是最具前景的可再生能源载体,将对未来的能量转换和存储系统至关重要。固体氧化物电解池(SOEC)是一种很有前景的绿色制氢技术,具有高电效率、无需使用贵金属催化剂以及可逆向运行等特点。本综述及时总结了SOEC的最新进展,涵盖了从单电池到电堆再到系统等各个层面的发展情况。讨论了电池/电堆组件、结构、先进电极材料/制造工艺以及新型表征方法。综述了每种电池/电堆结构的电化学性能和耐久性,重点关注降解机制及相关缓解策略。概述了SOEC系统与可再生能源及下游用户的集成情况,展示了其灵活性、稳健性、可扩展性、可行性和能源效率。预计通过材料、制造、生产、集成和运行方面的创新,可克服成本和耐久性方面的挑战。总体而言,这篇全面的综述确定了SOEC商业化的瓶颈,鼓励进一步开展技术研发,并展望了一个碳排放量净零的未来绿色氢能社会。

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