Yi Seung Yeop, Choi Eunho, Jang Ho Yeon, Lee Seonggyu, Park Jinkyu, Choi Daeeun, Jang Yeju, Kang Hojin, Back Seoin, Jang Segeun, Lee Jinwoo
Department of Chemical and Biomolecular Engineering, Korea Advanced Institute of Science and Technology (KAIST), 291 Daehak-ro, Yuseong-gu, Daejeon, 34141, Republic of Korea.
School of Mechanical Engineering, Kookmin National University, Seoul, 02707, Republic of Korea.
Adv Mater. 2023 Nov;35(46):e2302666. doi: 10.1002/adma.202302666. Epub 2023 Oct 12.
Atomically dispersed and nitrogen coordinated iron catalysts (Fe-NCs) demonstrate potential as alternatives to platinum-group metal (PGM) catalysts in oxygen reduction reaction (ORR). However, in the context of practical proton exchange membrane fuel cell (PEMFC) applications, the membrane electrode assembly (MEA) performances of Fe-NCs remain unsatisfactory. Herein, improved MEA performance is achieved by tuning the local environment of the Fe-NC catalysts through defect engineering. Zeolitic imidazolate framework (ZIF)-derived nitrogen-doped carbon with additional CO activation is employed to construct atomically dispersed iron sites with a controlled defect number. The Fe-NC species with the optimal number of defect sites exhibit excellent ORR performance with a high half-wave potential of 0.83 V in 0.5 M H SO . Variation in the number of defects allows for fine-tuning of the reaction intermediate binding energies by changing the contribution of the Fe d-orbitals, thereby optimizing the ORR activity. The MEA based on a defect-engineered Fe-NC catalyst is found to exhibit a remarkable peak power density of 1.1 W cm in an H /O fuel cell, and 0.67 W cm in an H /air fuel cell, rendering it one of the most active atomically dispersed catalyst materials at the MEA level.
原子分散且氮配位的铁催化剂(Fe-NCs)在氧还原反应(ORR)中展现出作为铂族金属(PGM)催化剂替代品的潜力。然而,在实际质子交换膜燃料电池(PEMFC)应用中,Fe-NCs的膜电极组件(MEA)性能仍不尽人意。在此,通过缺陷工程调节Fe-NC催化剂的局部环境,实现了MEA性能的提升。采用具有额外CO活化作用的沸石咪唑酯骨架(ZIF)衍生的氮掺杂碳来构建具有可控缺陷数的原子分散铁位点。具有最佳缺陷位点数量的Fe-NC物种在0.5 M H₂SO₄中表现出优异的ORR性能,半波电位高达0.83 V。缺陷数量的变化可通过改变Fe d轨道的贡献来微调反应中间体的结合能,从而优化ORR活性。基于缺陷工程化Fe-NC催化剂的MEA在H₂/O₂燃料电池中表现出1.1 W cm⁻²的显著峰值功率密度,在H₂/空气燃料电池中为0.67 W cm⁻²,使其成为MEA水平上最具活性的原子分散催化剂材料之一。