Xianfeng Yi , Yao Xiao , Changjiu Xia , Fengqing Liu , Yujia Liu , Yu Hui , Xin Yu , Yucai Qin , Wei Chen , Zhiqiang Liu , Lijuan Song , Anmin Zheng
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引用次数: 0
摘要
阐明多相催化剂中活性位点的性质是了解其反应性和催化性能的基础。尽管斯坦硅酸盐沸石在水介质中催化生物质相关化合物方面具有巨大的应用潜力,但迄今为止,人们对实际活性位点的详细局部结构和特征及其在反应条件下可能发生的结构变化知之甚少。本研究首次利用固体核磁共振(NMR)技术鉴定了锡硅酸盐沸石中Sn - O - Si位在分子吸附过程中向Sn - OH/Si - OH对以及随后的伪br ønsted酸的动态转变,这与工作条件下的各种吸附物/反应物类似,这挑战了人们普遍认为的活性中心结构在催化过程中保持刚性/稳定的假设。这些结果为进一步认识含Sn、Ti、Zr等异质金属原子的新型沸石催化剂的动态、柔性活性中心及其反应机理提供了新的全面见解。
Adsorbate-driven dynamic active sites in stannosilicate zeolites
Elucidating the nature of the active sites in heterogeneous catalysts is fundamental for understanding their reactivity and catalytic performances. Although stannosilicate zeolites have tremendous application potential for catalyzing biomass-related compounds in aqueous media, the detailed local structures and features of the real active sites and their possible structural variations under reaction conditions are poorly understood to date. In this study, a dynamic transformation of framework Sn−O−Si sites to Sn−OH/Si−OH pairs and subsequently a pseudo-Brønsted acid in stannosilicate zeolites upon molecular adsorption, which is analogous to various adsorbates/reactants under working conditions, was identified by solid-state nuclear magnetic resonance (NMR) spectroscopy for the first time, which challenges the widespread assumption that the active center structures remain rigid/stable during the catalytic process. These results provide new comprehensive insights for the fundamental understanding of the dynamic and flexible active centers and involved reaction mechanisms of novel zeolite catalysts with heterometal atoms, such as Sn, Ti, and Zr.