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Hierarchically Porous M–N–C (M = Co and Fe) Single-Atom Electrocatalysts with Robust MN_x Active Moieties Enable Enhanced ORR Performance

机译:具有鲁棒MN_x活性部分的多级多孔M–N-C(M = Co和Fe)单原子电催化剂可增强ORR性能

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摘要

The great interest in fuel cells inspires a substantial amount of research on nonprecious metal catalysts as alternatives to Pt-based oxygen reduction reaction (ORR) electrocatalysts. In this work, bimodal template-based synthesis strategies are proposed for the scalable preparation of hierarchically porous M-N-C (M = Fe or Co) single-atom electrocatalysts featured with active and robust MN2 active moieties. Multiscale tuning of M-N-C catalysts regarding increasing the number of active sites and boosting the intrinsic activity of each active site is realized simultaneously at a single-atom scale. In addition to the antipoisoning power and high affinity for O-2, the optimized Fe-N-C catalysts with FeN2 active site presents a superior electrocatalytic activity for ORR with a half-wave potential of 0.927 V (vs reversible hydrogen electrode (RHE)) in an alkaline medium, which is 49 and 55 mV higher than those of the Co-N-C counterpart and commercial Pt/C, respectively. Density functional theory calculations reveal that the FeN2 site is more active than the CoN2 site for ORR due to the lower energy barriers of the intermediates and products involved. The present work may help rational design of more robust ORR electrocatalysts at the atomic level, realizing the significant advances in electrochemical conversion and storage devices.
机译:对燃料电池的浓厚兴趣激发了大量关于非贵金属催化剂作为铂基氧还原反应(ORR)电催化剂替代品的研究。本文提出了基于双峰模板的合成策略,用于可扩展制备具有活性和鲁棒性MN2活性部分的多级多孔M-N-C(M = Fe或Co)单原子电催化剂。在单原子尺度上同时实现了M-N-C催化剂的多尺度调控,包括增加活性位点的数量和提高每个活性位点的内在活性。除了抗毒力和对O-2的高亲和力外,具有FeN2活性位点的优化Fe-N-C催化剂在碱性介质中对ORR具有优异的电催化活性,半波电位为0.927 V(与可逆氢电极(RHE)相比),比Co-N-C对应物和商业Pt/C高49和55 mV。 分别。密度泛函理论计算表明,FeN2位点比CoN2位点在ORR方面更活跃,这是由于所涉及的中间体和产物的能垒较低。本工作有助于在原子水平上合理设计更鲁棒的ORR电催化剂,实现电化学转化和存储器件的重大进展。

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