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钯单原子负载的共价有机框架用于通过氢异裂实现芳醛的水相氢化氢解反应

Palladium Single Atom-supported Covalent Organic Frameworks for Aqueous-phase Hydrogenative Hydrogenolysis of Aromatic Aldehydes via Hydrogen Heterolysis.

作者信息

Ouyang Zhihao, Sheng Guan, Zhong Yao, Wang Jun, Cai Jianxin, Deng Shuguang, Deng Qiang

机构信息

School of Chemistry and Chemical Engineering, Nanchang University, No. 999 Xuefu Avenue, Nanchang, 330031, P. R. China.

Center for Electron Microscopy, College of Chemical Engineering, Zhejiang University of Technology, No. 18 Chaowang Avenue, Hangzhou, 310014, China.

出版信息

Angew Chem Int Ed Engl. 2025 Feb 3;64(6):e202418790. doi: 10.1002/anie.202418790. Epub 2024 Nov 20.

Abstract

Developing a method for the tandem hydrogenative hydrogenolysis of bio-based furfuryl aldehydes to methylfurans is crucial for synthesizing sustainable biofuels and chemicals; however, it poses a challenge due to the easy hydrogenation of the C=C bond and difficult cleavage of the C-O bond. Herein, a palladium (Pd) single-atom-supported covalent organic framework was fabricated and showed a unique 2,5-dimethylfuran yield of up to 98.2 % when reacted with 5-methyl furfuryl aldehyde in an unprecedented water solvent at 30 °C. Furthermore, it exhibited excellent catalytic universality while converting various furfuryl-, benzyl-, and heterocyclic aldehydes at room temperature. The analysis of the catalytic mechanism confirmed that H was heterolytically activated on the Pd-N pair and triggered the keto-enol tautomerism of the covalent organic frameworks (COFs) host, resulting in H-Pd⋅⋅⋅O-H sites. These sites served as novel asymmetric hydrogenation sites for the C=O group and hydrogenolysis sites for the C-OH group through a scarce SN mechanism. This study demonstrated remarkable bifunctional catalysis through the H-induced keto-enol tautomerism of COF catalysts for the atypical preparation of methyl aromatics in a water solvent at room temperature.

摘要

开发一种将生物基糠醛串联加氢氢解为甲基呋喃的方法对于合成可持续生物燃料和化学品至关重要;然而,由于C=C键易于氢化以及C-O键难以裂解,这带来了挑战。在此,制备了一种钯(Pd)单原子负载的共价有机框架,在30°C的前所未有的水溶剂中与5-甲基糠醛反应时,其独特的2,5-二甲基呋喃产率高达98.2%。此外,在室温下转化各种糠醛、苄基醛和杂环醛时,它表现出优异的催化通用性。催化机理分析证实,H在Pd-N对上发生异裂活化,并引发共价有机框架(COFs)主体的酮-烯醇互变异构,从而产生H-Pd⋅⋅⋅O-H位点。这些位点通过罕见的SN机制作为C=O基团的新型不对称加氢位点和C-OH基团的氢解位点。这项研究通过H诱导的COF催化剂的酮-烯醇互变异构,在室温下的水溶剂中实现了甲基芳烃的非典型制备,展示了卓越的双功能催化作用。

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