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用于Fe-N-C催化剂活性位点定量的化学动力学方法及其与分子探针和光谱位点计数方法的相关性

Chemical Kinetic Method for Active-Site Quantification in Fe-N-C Catalysts and Correlation with Molecular Probe and Spectroscopic Site-Counting Methods.

作者信息

Bates Jason S, Martinez Jesse J, Hall Melissa N, Al-Omari Abdulhadi A, Murphy Eamonn, Zeng Yachao, Luo Fang, Primbs Mathias, Menga Davide, Bibent Nicolas, Sougrati Moulay Tahar, Wagner Friedrich E, Atanassov Plamen, Wu Gang, Strasser Peter, Fellinger Tim-Patrick, Jaouen Frédéric, Root Thatcher W, Stahl Shannon S

机构信息

Department of Chemistry, University of Wisconsin-Madison, Madison, Wisconsin 53706, United States.

Department of Chemical and Biomolecular Engineering, University of Wisconsin-Madison, Madison, Wisconsin 53706, United States.

出版信息

J Am Chem Soc. 2023 Dec 6;145(48):26222-26237. doi: 10.1021/jacs.3c08790. Epub 2023 Nov 20.

Abstract

Mononuclear Fe ions ligated by nitrogen (FeN) dispersed on nitrogen-doped carbon (Fe-N-C) serve as active centers for electrocatalytic O reduction and thermocatalytic aerobic oxidations. Despite their promise as replacements for precious metals in a variety of practical applications, such as fuel cells, the discovery of new Fe-N-C catalysts has relied primarily on empirical approaches. In this context, the development of quantitative structure-reactivity relationships and benchmarking of catalysts prepared by different synthetic routes and by different laboratories would be facilitated by the broader adoption of methods to quantify atomically dispersed FeN active centers. In this study, we develop a kinetic probe reaction method that uses the aerobic oxidation of a model hydroquinone substrate to quantify the density of FeN centers in Fe-N-C catalysts. The kinetic method is compared with low-temperature Mössbauer spectroscopy, CO pulse chemisorption, and electrochemical reductive stripping of NO derived from NO on a suite of Fe-N-C catalysts prepared by diverse routes and featuring either the exclusive presence of Fe as FeN sites or the coexistence of aggregated Fe species in addition to FeN. The FeN site densities derived from the kinetic method correlate well with those obtained from CO pulse chemisorption and Mössbauer spectroscopy. The broad survey of Fe-N-C materials also reveals the presence of outliers and challenges associated with each site quantification approach. The kinetic method developed here does not require pretreatments that may alter active-site distributions or specialized equipment beyond reaction vessels and standard analytical instrumentation.

摘要

分散在氮掺杂碳上的由氮配位的单核铁离子(FeN)作为电催化氧还原和热催化需氧氧化的活性中心。尽管它们有望在各种实际应用中替代贵金属,如燃料电池,但新型Fe-N-C催化剂的发现主要依赖于经验方法。在这种情况下,通过更广泛地采用量化原子分散的FeN活性中心的方法,将有助于建立定量结构-反应性关系以及对不同合成路线和不同实验室制备的催化剂进行基准测试。在本研究中,我们开发了一种动力学探针反应方法,该方法利用模型对苯二酚底物的需氧氧化来量化Fe-N-C催化剂中FeN中心的密度。将该动力学方法与低温穆斯堡尔光谱、CO脉冲化学吸附以及对一系列通过不同路线制备的Fe-N-C催化剂上由NO衍生的NO进行电化学还原脱附进行了比较,这些催化剂要么仅存在作为FeN位点的Fe,要么除FeN外还存在聚集的Fe物种。从动力学方法得出的FeN位点密度与通过CO脉冲化学吸附和穆斯堡尔光谱获得的密度相关性良好。对Fe-N-C材料的广泛研究还揭示了与每种位点定量方法相关的异常值和挑战。这里开发的动力学方法不需要可能改变活性位点分布的预处理,也不需要反应容器和标准分析仪器之外的专门设备。

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