Wang Hao, Chen Biao-Hua, Liu Di-Jia
Chemical Sciences and Engineering Division, Argonne National Laboratory, Lemont, IL, 60439, USA.
College of Environmental and Energy Engineering, Beijing University of Technology, Beijing, 100124, China.
Adv Mater. 2021 Jun;33(25):e2008023. doi: 10.1002/adma.202008023. Epub 2021 May 13.
Increasing demand for sustainable and clean energy is calling for the next-generation energy conversion and storage technologies such as fuel cells, water electrolyzers, CO /N reduction electrolyzers, metal-air batteries, etc. All these electrochemical processes involve oxygen electrocatalysis. Boosting the intrinsic activity and the active-site density through rational design of metal-organic frameworks (MOFs) and metal-organic gels (MOGs) as precursors represents a new approach toward improving oxygen electrocatalysis efficiency. MOFs/MOGs afford a broad selection of combinations between metal nodes and organic linkers and are known to produce electrocatalysts with high surface areas, variable porosity, and excellent activity after pyrolysis. Some recent studies on MOFs/MOGs for oxygen electrocatalysis and their new perspectives in synthesis, characterization, and performance are discussed. New insights on the structural and compositional design in MOF/MOG-derived oxygen electrocatalysts are summarized. Critical challenges and future research directions are also outlined.
对可持续清洁能源日益增长的需求,正催生出下一代能量转换与存储技术,如燃料电池、水电解槽、CO₂/N₂还原电解槽、金属空气电池等。所有这些电化学过程都涉及氧电催化。通过合理设计作为前驱体的金属有机框架(MOF)和金属有机凝胶(MOG)来提高本征活性和活性位点密度,是提高氧电催化效率的一种新方法。MOF/MOG提供了金属节点与有机连接体之间广泛的组合选择,并且已知在热解后能产生具有高表面积、可变孔隙率和优异活性的电催化剂。本文讨论了最近一些关于用于氧电催化的MOF/MOG及其在合成、表征和性能方面的新观点。总结了MOF/MOG衍生的氧电催化剂在结构和组成设计方面的新见解。还概述了关键挑战和未来的研究方向。