异构化
化学
纳米棒
离解(化学)
均分解
氢化物
锌
催化作用
氧气
光谱学
无机化学
离子
氢
光化学
氧化物
核磁共振波谱
物理化学
激进的
纳米技术
立体化学
有机化学
物理
材料科学
量子力学
作者
Benteng Song,Yuhong Li,Xin‐Ping Wu,Fang Wang,Ming Lin,Yunhua Sun,Aiping Jia,N. Xiang,Jin Li,Xiaokang Ke,Zhengkun Yu,Gang Yang,Wenhua Hou,Weiping Ding,Xue‐Qing Gong,Luming Peng
摘要
ZnO plays a very important role in many catalytic processes involving H2, yet the details on their interactions and H2 activation mechanism are still missing, owing to the lack of a characterization method that provides resolution at the atomic scale and follows the fate of oxide surface species. Here, we apply 17O solid-state NMR spectroscopy in combination with DFT calculations to unravel the surface structure of ZnO nanorods and explore the H2 activation process. We show that six different types of oxygen ions in the surface and subsurface of ZnO can be distinguished. H2 undergoes heterolytic dissociation on three-coordinated surface zinc and oxygen ions, while the formed hydride species migrate to nearby oxygen species, generating a second hydroxyl site. When oxygen vacancies are present, homolytic dissociation of H2 occurs and zinc hydride species form from the vacancies. Reaction mechanisms on oxide surfaces can be explored in a similar manner.
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