首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >A Combined Probe-Molecule, Mossbauer, Nuclear Resonance Vibrational Spectroscopy, and Density Functional Theory Approach for Evaluation of Potential Iron Active Sites in an Oxygen Reduction Reaction Catalyst
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A Combined Probe-Molecule, Mossbauer, Nuclear Resonance Vibrational Spectroscopy, and Density Functional Theory Approach for Evaluation of Potential Iron Active Sites in an Oxygen Reduction Reaction Catalyst

机译:用于评估氧还原反应催化剂中的潜在铁活性位点的组合探针分子,莫斯堡,核共振振动光谱和密度泛函理论方法

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Nonprecious metal M-N-C (M = Fe or Co) catalysts that are effective for the oxygen-reduction reaction in polymer electrolyte fuel cells have been developed, but no consensus has yet been reached regarding the nature of the M sites in these heterogeneous catalysts that are responsible for the reaction with dioxygen (O-2). While multiple studies have developed correlations between Fe distributions in as-prepared catalysts and ORR activity, the direct identification of sites reactive toward O-2 or O-2-analogue molecules remains a significant challenge. In the present study, we demonstrate a new approach to identifying and characterizing potential Fe active sites in complex ORR catalysts that combines an effective probe molecule (NO(g)), Mossbauer spectroscopy, and nuclear resonance vibrational spectroscopy (NRVS) with density functional theory (DFT) calculations. Mossbauer spectroscopic studies demonstrate that NO(g) treatment of electrochemically reduced PANI-Fe-57-C leads to a selective reaction with only a subset of the Fe species present. Nuclear resonance vibrational spectroscopic studies identified new Fe-ligand vibrations associated with the site reactive toward NO(g). DFT calculations of the vibrational properties of a selection of previously proposed active-site structures suggest that graphene zigzag edge-hosted Fe-N structures may be responsible for the observed vibrational behavior with NO(g) probe molecules. Furthermore, such sites are likely also reactive to O-2, possibly serving as the ORR active sites in the synthesized materials.
机译:已经开发出在聚合物电解质燃料电池中有效对氧还原反应有效的非普烈金属MnC(M = Fe或Co)催化剂,但是对于这些异质催化剂中的M位点的性质,尚未达成共识用于与二恶英(O-2)的反应。虽然多种研究在制备的催化剂和ORR活性中产生了Fe分布之间的相关性,但是对O-2或O-2 - 类似物分子反应的位点的直接鉴定仍然是重大挑战。在本研究中,我们证明了一种新的方法来鉴定和表征复合ORR催化剂中的潜在Fe活性位点,所述复合ORR催化剂与密度函数理论结合有效探针分子(NO(G)),莫斯贝尔光谱和核共振振动光谱(NRV) (DFT)计算。莫斯鲍尔光谱研究表明,没有(g)电化学减少的Pani-Fe-57-C的处理导致具有存在的Fe物种的子集的选择性反应。核共振振动光谱研究确定了与NO(G)反应的部位相关的新的Fe-LigAnd振动。选择先前提出的主题部位结构的选择的DFT计算表明石墨烯Zigzag边缘托管的Fe-N结构可以负责具有NO(G)探针分子的观察到的振动行为。此外,这种位点也可能与O-2反应,可能用作合成材料中的ORR活性位点。

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