单位点Ti(IV)包埋zr - mof的孔工程对大尺寸羰基底物的催化硼加氢作用增强

IF 7.7 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Ming-Wu Liu  (, ), Hai-An Lin  (, ), Feifan Lang  (, ), Hao Zhang  (, ), Cha Li  (, ), Yu-Fen Wang  (, ), Wen-Xiong Shi  (, ), Tongju Zi  (, ), Xifei Li  (, ), De-Jun Li  (, ), Jiandong Pang  (, )
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引用次数: 0

摘要

将单位点金属催化节点部署到锆基金属有机框架(Zr-MOFs)中,在催化可回收性、产物分离和机理分析方面具有巨大优势,强调了它们在多相催化中的重要意义。尽管如此,它们在孔隙/通道中的占据通常会降低反应中的传质和催化效率,例如羰基化合物的硼氢化反应,特别是对于体积较大的底物。为了解决这一问题,我们新合成了三个单位点Ti(IV)嵌入的zr - mof,它们具有顺序延伸的配体手臂,可以实现从9.04,10.12到11.18 Å的精确孔调制。采用8种不同尺寸的羰基化合物和另外4种较大尺寸的底物对催化性能进行了研究,结果表明,通过调节孔径可以提高催化效率,但仍未达到最佳催化性能。在介孔zr - mof的配位-不饱和窗口内安装线性二羧酸配体螯合单位点Ti(IV)的连接剂,结果表明,所获得的催化剂在保持zr - mof固有介孔性的同时,具有优异的催化效率(均超过90%),其孔径约为21.73 Å。我们相信本研究对mof的结构设计和催化优化具有重要的指导意义,为多相催化开辟了新的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pore-engineering of single-site Ti(IV) embedded Zr-MOFs for enhanced catalytic hydroboration of large size carbonyl substrates

The deployment of single-site metal catalytic nodes into zirconium-based metal-organic frameworks (Zr-MOFs) offers vast advantages in catalytic recyclability, product separation, and mechanistic analysis, underscoring their paramount significance in heterogeneous catalysis. Nonetheless, their occupation within pores/channels usually diminishes mass transfer and catalytic efficiency during reactions such as the hydroboration of carbonyl compounds, especially for bulkier substrates. To address this issue, three microporous single-site Ti(IV) embedded Zr-MOFs with sequentially extended ligand arms are novelly synthesized to enable precise pore modulation ranging from 9.04, 10.12, to 11.18 Å. The catalytic performance is investigated using eight carbonyl compounds of varying sizes and four additional larger-scale substrates, which demonstrates that the catalytic efficiency is increased through pore size regulation, yet still away from optimal catalytic performance. Then a further strategy was shifted to the linker installation of linear di-carboxylate ligands chelated single-site Ti(IV) within co-ordination-unsaturated windows of mesoporous Zr-MOFs, and the result elucidates that the obtained catalyst exhibits superior catalytic efficiency (all exceeding 90%) while preserving the inherent mesoporosity of Zr-MOFs with a pore size of approximately 21.73 Å. We believe this research provides critical guidance for future research on structural design and catalytic optimization of MOFs, opening new avenues in heterogeneous catalysis.

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来源期刊
Science China Materials
Science China Materials Materials Science-General Materials Science
CiteScore
11.40
自引率
7.40%
发文量
949
期刊介绍: Science China Materials (SCM) is a globally peer-reviewed journal that covers all facets of materials science. It is supervised by the Chinese Academy of Sciences and co-sponsored by the Chinese Academy of Sciences and the National Natural Science Foundation of China. The journal is jointly published monthly in both printed and electronic forms by Science China Press and Springer. The aim of SCM is to encourage communication of high-quality, innovative research results at the cutting-edge interface of materials science with chemistry, physics, biology, and engineering. It focuses on breakthroughs from around the world and aims to become a world-leading academic journal for materials science.
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