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通过电致化学发光显微镜原位成像,在亚颗粒水平上研究电催化反应活性的面诱导空间各向异性。

In Situ Imaging Facet-Induced Spatial Heterogeneity of Electrocatalytic Reaction Activity at the Subparticle Level via Electrochemiluminescence Microscopy.

机构信息

State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering , Nanjing University , Nanjing , Jiangsu 210023 , China.

Kuang Yaming Honors School , Nanjing University , Nanjing , Jiangsu 210023 , China.

出版信息

Anal Chem. 2019 May 21;91(10):6829-6835. doi: 10.1021/acs.analchem.9b01044. Epub 2019 Apr 30.

Abstract

Investigating catalytic behavior of heterogeneous catalysts, especially at the crystal facets level, is crucial for rational catalyst design in the energy and environmental fields. Here we demonstrate an efficient approach to in situ visualize and analyze the heterogeneity of electrocatalytic activity on different facets at the subparticle level via electrochemiluminescence (ECL) microscopy. ZnO crystals with various exposed facet proportions were synthesized, and the correlation between their electrocatalytic performance toward luminol analogue degradation and the exposed facets is established. It is clearly imaged that the ZnO (002) facet has superior catalytic performance compared to the ZnO (100) facet, which is supported by theoretical computation and electrochemical experiments as the facet-induced heterogeneity of the catalytic effect on oxygen reduction into the key reactant for ECL. Accordingly, the spatial heterogeneity of electrocatalytic activity at different facets on one particle is visualized for the first time. The realization of subparticle ECL imaging and kinetic analysis could provide a special approach to visualize facet-induced spatial heterogeneity of catalytic behavior and valuable information for the catalysis study and analysis.

摘要

研究多相催化剂的催化行为,特别是在晶体晶面水平上,对于能源和环境领域的合理催化剂设计至关重要。在这里,我们通过电致化学发光(ECL)显微镜展示了一种在亚颗粒水平上原位可视化和分析不同晶面电催化活性异质性的有效方法。合成了具有不同暴露晶面比例的 ZnO 晶体,并建立了它们对鲁米诺类似物降解的电催化性能与暴露晶面之间的相关性。通过理论计算和电化学实验清楚地表明,与 ZnO(100)晶面相比,ZnO(002)晶面具有优越的催化性能,这是由于晶面诱导的氧还原成 ECL 的关键反应物的催化效应的异质性。因此,首次可视化了一个粒子上不同晶面的电催化活性的空间异质性。亚颗粒 ECL 成像和动力学分析的实现为可视化催化行为的晶面诱导空间异质性提供了一种特殊方法,并为催化研究和分析提供了有价值的信息。

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