原位溶出策略在固体氧化物电池燃料电极中的应用OA
Application of In-situ Exsolution Strategy in Fuel Electrodes of Solid Oxide Cells
固体氧化物电池(SOCs)是实现高效电化学能量转换与存储的关键技术,但其燃料电极长期面临活性、稳定性与燃料适应性难以兼顾的挑战.原位溶出策略通过将活性金属预先掺杂于钙钛矿晶体,并通过诱导其原位溶出,构建了结构稳定、功能协同的"金属—氧化物"异质结构.该异质结构不仅可以显著提升电极的催化活性与抗积碳、抗硫中毒能力,还具备氧化还原可逆性,为可逆固体氧化物电池(RSOC)的动态稳定运行提供了一个有前景的技术方案.本文阐述了原位溶出的机理以及形成的异质界面的协同催化原理,总结了该策略在 SOFC、SOEC 及 RSOC 燃料电极中的研究进展,并对原位溶出策略应用于 SOCs 的发展前景进行了展望.
[Significance]Solid oxide cells represent a highly efficient technology for electrochemical energy conversion and storage,yet their widespread application is hindered by the challenge of synergistically optimizing the catalytic activity,long-term stability,and fuel adaptability of fuel electrodes.Conventional nickel-based electrodes are susceptible to coking,sulfur poisoning,and insufficient redox stability,while perovskite mixed ionic-electronic conductors often suffer from intrinsically low catalytic activity.In this context,the in-situ exsolution strategy has emerged as an innovative electrode design approach.This strategy involves pre-doping target active metal elements into the B-site of a perovskite lattice,followed by inducing their migration from the lattice interior and in-situ precipitation under a reducing operating atmosphere,thereby constructing a structurally robust and functionally synergistic"metal-oxide"heterointerface on the perovskite substrate.This review systematically elaborates on the fundamental thermodynamic and kinetic principles of the in-situ exsolution strategy and provides an in-depth analysis of the unique advantages and synergistic catalytic mechanisms of the constructed heterointerfaces.The exsolved metal or alloy nanoparticles often form a strongly coupled epitaxial interface with the perovskite support.This not only effectively anchors the nanoparticles and suppresses their high-temperature agglomeration but also significantly enhances the overall electrocatalytic performance of the electrode through the synergy between the metal sites(providing catalytic activity)and the oxide support(providing oxygen vacancies and ion transport pathways).Moreover,the excellent redox reversibility of this interface,where the metal nanoparticles can undergo reversible exsolution and re-dissolution in response to atmospheric changes,laying the foundation for the dynamically stable operation of reversible solid oxide cells. [Progress]Regarding applications,the review provides a detailed summary of the latest research progress of this strategy in fuel electrodes for solid oxide fuel cells,electrolysis cells,and reversible cells.For SOFCs,anodes developed by designing the exsolution of multicomponent alloys(e.g.,NiFe,CoFe)or core-shell structures have demonstrated high power density and exceptional resistance to coking and sulfur poisoning in fuels ranging from hydrogen and hydrocarbons to ammonia.For SOECs,the heterointerface of perovskite cathodes has been optimized through A-site deficiency,elemental doping(e.g.,Sn,Cu),or dynamic redox treatments,enabling high-current-density CO2 electrolysis and demonstrating good stability in impurity-containing atmospheres.For RSOCs,leveraging the reversible nature of the exsolved interface,bifunctional fuel electrodes have been successfully developed that maintain high activity and cyclic stability during repeated switching between fuel cell and electrolysis modes. [Conclusions and prospects]Despite the significant achievements of the in-situ exsolution strategy,its path toward large-scale practical application still faces multiple challenges.Future efforts should focus on the following key areas:(1)developing more precise in-situ characterization techniques to uncover the dynamic evolution of heterointerfaces;(2)develop large-scale electrode fabrication technologies compatible with the production of large-area cells(e.g.,tape casting),and establish precise and controllable reduction heat treatment techniques;and(3)leveraging artificial intelligence(AI)to assist in material screening and design.
易子恒;徐序;王昊;陆浩田;王乐莹;罗凌虹;程亮;熊斌;曹希文
景德镇陶瓷大学 材料科学与工程学院,江西 景德镇 333403景德镇陶瓷大学 材料科学与工程学院,江西 景德镇 333403景德镇陶瓷大学 材料科学与工程学院,江西 景德镇 333403景德镇陶瓷大学 材料科学与工程学院,江西 景德镇 333403景德镇陶瓷大学 材料科学与工程学院,江西 景德镇 333403景德镇陶瓷大学 材料科学与工程学院,江西 景德镇 333403景德镇陶瓷大学 国家日用及建筑陶瓷工程技术研究中心,江西 景德镇 333403景德镇陶瓷大学 材料科学与工程学院,江西 景德镇 333403景德镇陶瓷大学 材料科学与工程学院,江西 景德镇 333403
化学化工
固体氧化物电池原位溶出钙钛矿燃料电极异质界面
solid oxide cellsin-situ exsolutionperovskite fuel electrodeheterogeneous interface
《陶瓷学报》 2026 (2)
252-266,15
国家自然科学基金(51762026,51802132)江西省自然科学基金(20224ACB204010,20242BAB20086)景德镇市科技计划项目(20234ST005).
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