Materials Physics and Applications Division, Los Alamos National Laboratory, Los Alamos, NM 87545, USA.
Materials Science and Technology Division, Oak Ridge National Laboratory, Oak Ridge, TN 37831, USA.
Science. 2017 Aug 4;357(6350):479-484. doi: 10.1126/science.aan2255.
Platinum group metal-free (PGM-free) metal-nitrogen-carbon catalysts have emerged as a promising alternative to their costly platinum (Pt)-based counterparts in polymer electrolyte fuel cells (PEFCs) but still face some major challenges, including (i) the identification of the most relevant catalytic site for the oxygen reduction reaction (ORR) and (ii) demonstration of competitive PEFC performance under automotive-application conditions in the hydrogen (H)-air fuel cell. Herein, we demonstrate H-air performance gains achieved with an iron-nitrogen-carbon catalyst synthesized with two nitrogen precursors that developed hierarchical porosity. Current densities recorded in the kinetic region of cathode operation, at fuel cell voltages greater than ~0.75 V, were the same as those obtained with a Pt cathode at a loading of 0.1 milligram of Pt per centimeter squared. The proposed catalytic active site, carbon-embedded nitrogen-coordinated iron (FeN), was directly visualized with aberration-corrected scanning transmission electron microscopy, and the contributions of these active sites associated with specific lattice-level carbon structures were explored computationally.
无贵金属(PGM-free)金属-氮-碳催化剂作为聚合物电解质燃料电池(PEFCs)中昂贵的铂(Pt)基催化剂的替代品已经出现,但仍面临一些重大挑战,包括(i)确定最相关的氧还原反应(ORR)催化位点,以及(ii)在汽车应用条件下,在氢(H)-空气燃料电池中展示具有竞争力的 PEFC 性能。本文展示了使用两种氮前体制备的具有分级多孔结构的铁-氮-碳催化剂实现的 H2-空气性能增益。在大于约 0.75 V 的燃料电池电压下,在阴极操作的动力学区域记录的电流密度与在负载为每平方厘米 0.1 毫克 Pt 的 Pt 阴极上获得的电流密度相同。所提出的催化活性位,碳嵌入氮配位铁(FeN),可以通过像差校正扫描电子显微镜直接可视化,并且计算探索了与特定晶格级碳结构相关的这些活性位的贡献。