Institut Charles Gerhardt Montpellier, Laboratory for Aggregates, Interfaces and Materials for Energy, UMR 5253, CNRS, Université de Montpellier , 34095 Montpellier, France.
Johnson Matthey Technology Centre , Sonning Common, Berkshire RG4 9NH, United Kingdom.
J Am Chem Soc. 2017 Jan 11;139(1):453-464. doi: 10.1021/jacs.6b11248. Epub 2016 Dec 20.
Active and inexpensive catalysts for oxygen reduction are crucially needed for the widespread development of polymer electrolyte fuel cells and metal-air batteries. While iron-nitrogen-carbon materials pyrolytically prepared from ZIF-8, a specific zeolitic imidazolate framework (ZIF) with sodalite topology, have shown enhanced activities toward oxygen reduction in acidic electrolyte, the rational design of sacrificial metal-organic frameworks toward this application has hitherto remained elusive. Here, we report for the first time that the oxygen reduction activity of Fe-N-C catalysts positively correlates with the cavity size and mass-specific pore volume in pristine ZIFs. The high activity of Fe-N-C materials prepared from ZIF-8 could be rationalized, and another ZIF structure leading to even higher activity was identified. In contrast, the ORR activity is mostly unaffected by the ligand chemistry in pristine ZIFs. These structure-property relationships will help identifying novel sacrificial ZIF or porous metal-organic frameworks leading to even more active Fe-N-C catalysts. The findings are of great interest for a broader application of the class of inexpensive metal-nitrogen-carbon catalysts that have shown promising activity also for the hydrogen evolution (Co-N-C) and carbon dioxide reduction (Fe-N-C and Mn-N-C).
对于聚合物电解质燃料电池和金属空气电池的广泛发展,急需活性高且价格低廉的氧气还原催化剂。虽然沸石咪唑酯骨架-8(ZIF-8)热解得到的铁-氮-碳材料在酸性电解质中对氧气还原表现出增强的活性,但迄今为止,针对这一应用的牺牲型金属有机骨架的合理设计仍难以捉摸。在这里,我们首次报道,在原始 ZIF 中,Fe-N-C 催化剂的氧气还原活性与空腔大小和比质量孔体积呈正相关。可以合理地解释由 ZIF-8 制备的 Fe-N-C 材料的高活性,并且确定了另一种导致更高活性的 ZIF 结构。相比之下,ORR 活性在很大程度上不受原始 ZIF 中配体化学的影响。这些结构-性能关系将有助于识别新型牺牲型 ZIF 或多孔金属有机骨架,从而得到更具活性的 Fe-N-C 催化剂。对于已经显示出对氢气析出(Co-N-C)和二氧化碳还原(Fe-N-C 和 Mn-N-C)也具有高活性的廉价金属-氮-碳催化剂的更广泛应用,这些发现具有重要意义。