Department of Chemical and Petroleum Engineering and Department of Chemistry, University of Kansas , Lawrence, Kansas 66047, United States.
Joint Institute for Computational Sciences, The University of Tennessee , Oak Ridge, Tennessee 37831, United States.
J Am Chem Soc. 2017 Jul 19;139(28):9721-9727. doi: 10.1021/jacs.7b05492. Epub 2017 Jul 7.
Ceria has recently shown intriguing hydrogenation reactivity in catalyzing alkyne selectively to alkenes. However, the mechanism of the hydrogenation reaction, especially the activation of H, remains experimentally elusive. In this work, we report the first direct spectroscopy evidence for the presence of both surface and bulk Ce-H species upon H dissociation over ceria via in situ inelastic neutron scattering spectroscopy. Combined with in situ ambient-pressure X-ray photoelectron spectroscopy, IR, and Raman spectroscopic studies, the results together point to a heterolytic dissociation mechanism of H over ceria, leading to either homolytic products (surface OHs) on a close-to-stoichiometric ceria surface or heterolytic products (Ce-H and OH) with the presence of induced oxygen vacancies in ceria. The finding of this work has significant implications for understanding catalysis by ceria in both hydrogenation and redox reactions where hydrogen is involved.
氧化铈在催化炔烃选择性还原为烯烃方面最近表现出了有趣的加氢反应活性。然而,加氢反应的机理,特别是 H 的活化,在实验上仍然难以捉摸。在这项工作中,我们通过原位非弹性中子散射光谱首次报道了在氧化铈上通过 H 离解存在表面和体相 Ce-H 物种的直接光谱证据。结合原位常压 X 射线光电子能谱、IR 和拉曼光谱研究,结果共同指出了 H 在氧化铈上的异裂解离机制,导致在接近化学计量的氧化铈表面上生成均裂产物(表面 OHs),或在氧化铈中存在诱导氧空位时生成异裂产物(Ce-H 和 OH)。这项工作的发现对于理解氧化铈在加氢和氧化还原反应中涉及氢气的催化作用具有重要意义。