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基本信息Personal Information
副研究员(自然科学) 硕士生导师
性别 : 男
毕业院校 : 中国科学院大连化学物理研究所
学历 : 博士研究生毕业
学位 : 博士学位
在职信息 : 在岗
所在单位 : 杭州高等研究院
入职时间 : 2019年11月14日
办公地点 : 杭州高等研究院童趣楼101-2
联系方式 : 0571-82257902
Email :
20241021_COF修饰Cu/Fe3O4增强水气变换反应中稳定性的论文发表于ChemistrySelect., 祝贺2022级研究生任梦想!
发布时间 : 2024-10-21 点击量 :
Mengxiang Ren†a, Ruifan Tan†a, Xiaoling Mou*a,b, Qiying Liu, c Ronghe Lin*a,b, and Yunjie Ding*a,d,e
Stability is crucial for the practical application of heterogeneous catalysts, particularly in industrial processes, where catalyst deactivation often occurs due to factors such as sintering, poisoning, and active site degradation. This study investigates the effectiveness of utilizing covalent organic frameworks (COFs), specifically RT-COF-1, to enhance the stability of Cu/Fe3O4 catalysts in harsh water-gas shift (WGS) reaction environments. By encapsulating Cu/Fe3O4 with trace RT-COF-1, we aimed to preserve the structural integrity and active interfaces between the metal components during catalytic reactions. Characterization techniques, including X-ray photoelectron spectroscopy, nitrogen sorption, and high-angle annular dark-field scanning transmission electron microscopy, confirmed the successful COF coating and its role in preventing particle aggregation and maintaining active site structures over extended catalytic tests. Notably, Cu/Fe3O4@COF demonstrated significantly enhanced stability during a continuous 24-hour WGS test compared to uncoated catalysts, which exhibited rapid deactivation. Mechanistic insights indicated that COF coating reduced the number of active sites while preserving the overall morphology of the catalyst, contributing to its robust performance. Ultimately, this work highlights the potential of COF encapsulation as an effective strategy for enhancing the durability and efficacy of multifunctional catalysts in challenging reaction conditions.