School of Chemistry and Environmental Engineering, Pingdingshan University, Pingdingshan, 467000, P. R. China.
School of Ceramic, Pingdingshan University, Pingdingshan, 467000, P. R. China.
Small. 2023 Jun;19(24):e2300373. doi: 10.1002/smll.202300373. Epub 2023 Mar 15.
FeNC catalysts demonstrate remarkable activity and stability for the oxygen reduction reaction (ORR) in polymer electrolyte membrane fuel cells and Zn-air batteries (ZABs). The local coordination of Fe single atoms in FeNC catalysts strongly impacts ORR activity. Herein, FeNC catalysts containing Fe single atoms sites with FeN , FeN , and FeN coordinations are synthesized by carbonization of Fe-rich polypyrrole precursors. The FeN sites possess a higher Fe oxidation state (+2.62) than the FeN (+2.23) and FeN (+2.47) sites, and higher ORR activity. Density functional theory calculations verify that the FeN coordination optimizes the adsorption and desorption of ORR intermediates, dramatically lowering the energy barrier for OH desorption in the rate-limiting ORR step. A primary ZAB constructed using the FeNC catalyst with FeN sites demonstrates state-of-the-art performance (an open circuit potential of 1.629 V, power density of 159 mW cm ). Results confirm an intimate structure-activity relationship between Fe coordination, Fe oxidation state, and ORR activity in FeNC catalysts.
FeNC 催化剂在聚合物电解质膜燃料电池和锌空气电池(ZABs)中的氧还原反应(ORR)中表现出出色的活性和稳定性。FeNC 催化剂中 Fe 单原子的局部配位强烈影响 ORR 活性。在此,通过富铁聚吡咯前体的碳化合成了含有 Fe 单原子位的 FeNC 催化剂,其具有 FeN 、FeN 和 FeN 配位。FeN 位具有比 FeN (+2.23) 和 FeN (+2.47) 位更高的 Fe 氧化态 (+2.62),并且具有更高的 ORR 活性。密度泛函理论计算验证了 FeN 配位优化了 ORR 中间体的吸附和解吸,极大地降低了限速 ORR 步骤中 OH 解吸的能垒。使用具有 FeN 位的 FeNC 催化剂构建的初级 ZAB 表现出了最先进的性能(开路电位为 1.629 V,功率密度为 159 mW cm )。结果证实了 Fe 配位、Fe 氧化态和 FeNC 催化剂中 ORR 活性之间的紧密结构-活性关系。