School of Energy and Chemical Engineering, Ulsan National Institute of Science and Technology (UNIST), 50 UNIST-gil, Ulsan 44919, Republic of Korea.
Faculty of Chemistry and Pharmacy, University of Sofia, 1126 Sofia, Bulgaria.
Molecules. 2023 Feb 18;28(4):1957. doi: 10.3390/molecules28041957.
Pd-based catalysts are widely used in the oxidation of CH and have a significant impact on global warming. However, understanding their active sites remains controversial, because interconversion between Pd and PdO occurs consecutively during the reaction. Understanding the intrinsic active sites under reaction conditions is critical for developing highly active and selective catalysts. In this study, we demonstrated that partially oxidized palladium (PdO) on the surface plays an important role for CH oxidation. Regardless of whether the initial state of Pd corresponds to oxides or metallic clusters, the topmost surface is PdO, which is formed during CH4 oxidation. A quantitative analysis using CO titration, diffuse reflectance infrared Fourier-transform spectroscopy, X-ray diffraction, and scanning transmission electron microscopy demonstrated that a surface PdO layer was formed on top of the metallic Pd clusters during the CH oxidation reaction. Furthermore, the time-on-stream test of CH oxidation revealed that the presence of the PdO layer on top of the metallic Pd clusters improves the catalytic activity. Our periodic density functional theory (DFT) calculations with a PdO slab and nanoparticle models aided the elucidation of the structure of the experimental PdO particles, as well as the experimental C-O bands. The DFT results also revealed the formation of a PdO layer on the metallic Pd clusters. This study helps achieve a fundamental understanding of the active sites of Pd and PdO for CH oxidation and provides insights into the development of active and durable Pd-based catalysts through molecular-level design.
钯基催化剂广泛应用于 CH 的氧化,对全球变暖有重大影响。然而,其活性位的理解仍存在争议,因为在反应过程中 Pd 和 PdO 会连续相互转化。在反应条件下理解内在的活性位对于开发高活性和选择性的催化剂至关重要。在本研究中,我们证明了表面部分氧化的钯(PdO)对 CH 氧化起着重要作用。无论 Pd 的初始状态是氧化物还是金属簇,最表层都是 PdO,它是在 CH4 氧化过程中形成的。通过 CO 滴定、漫反射红外傅里叶变换光谱、X 射线衍射和扫描透射电子显微镜的定量分析表明,在 CH 氧化反应过程中,在金属 Pd 簇的顶部形成了一层表面 PdO 层。此外,CH 氧化的在线时间测试表明,在金属 Pd 簇的顶部存在 PdO 层可以提高催化活性。我们使用 PdO 片和纳米颗粒模型的周期性密度泛函理论(DFT)计算有助于阐明实验 PdO 颗粒的结构以及实验 C-O 带。DFT 结果还揭示了在金属 Pd 簇上形成了一层 PdO。本研究有助于深入了解 Pd 和 PdO 在 CH 氧化中的活性位,并为通过分子水平设计开发活性和耐用的 Pd 基催化剂提供了见解。