State Key Laboratory of Physical Chemistry of Solid Surfaces, MOE Key Laboratory of Spectrochemical Analysis and Instrumentation, College of Chemistry and Chemical Engineering, College of Materials, iChEM, Fujian Key Laboratory of Advanced Materials, College of Energy, Xiamen University, Xiamen 361005, China.
College of Optical and Electronic Technology, China Jiliang University, Hangzhou 310018, China.
J Am Chem Soc. 2021 Sep 29;143(38):15635-15643. doi: 10.1021/jacs.1c04590. Epub 2021 Sep 20.
Understanding the fundamental insights of oxygen activation and reaction at metal-oxide interfaces is of significant importance yet remains a major challenge due to the difficulty in in situ characterization of active oxygen species. Herein, the activation and reaction of molecular oxygen during CO oxidation at platinum-ceria interfaces has been in situ explored using surface-enhanced Raman spectroscopy (SERS) via a borrowing strategy, and different active oxygen species and their evolution during CO oxidation at platinum-ceria interfaces have been directly observed. In situ Raman spectroscopic evidence with isotopic exchange experiments demonstrate that oxygen is efficiently dissociated to chemisorbed O on Pt and lattice Ce-O species simultaneously at interfacial Ce defect sites under CO oxidation, leading to a much higher activity at platinum-ceria interfaces compared to that at Pt alone. Further in situ time-resolved SERS studies and density functional theory simulations reveal a more efficient molecular pathway through the reaction between adsorbed CO and chemisorbed Pt-O species transferred from the interfaces. This work deepens the fundamental understandings on oxygen activation and CO oxidation at metal-oxide interfaces and offers a sensitive technique for the in situ characterization of oxygen species under working conditions.
理解金属氧化物界面上氧气的活化和反应的基本见解非常重要,但由于难以原位表征活性氧物种,这仍然是一个主要挑战。在此,通过借氢策略,利用表面增强拉曼光谱(SERS)原位研究了铂-铈界面上 CO 氧化过程中分子氧的活化和反应,直接观察了不同活性氧物种及其在 CO 氧化过程中的演变。原位拉曼光谱证据和同位素交换实验表明,在 CO 氧化过程中,氧在界面 Ce 缺陷位上同时高效地解离为化学吸附在 Pt 上的 O 和晶格 Ce-O 物种,从而导致铂-铈界面上的活性远远高于单独的 Pt。进一步的原位时间分辨 SERS 研究和密度泛函理论模拟揭示了一种更有效的分子途径,通过吸附在 CO 和从界面转移的化学吸附 Pt-O 物种之间的反应。这项工作加深了对金属氧化物界面上氧气活化和 CO 氧化的基本理解,并为在工作条件下原位表征氧物种提供了一种敏感的技术。