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用于将环境中的一氧化碳固定为高价值化合物的非贵金属锚定二维共价有机框架

Non-Noble Metal Anchored 2D Covalent Organic Framework for Ambient CO Fixation to High-Value Compounds.

作者信息

Parihar Vaibhav, Singh Gulshan, Duhan Nidhi, Kumar Shubham, Dhilip Kumar T J, Nagaraja C M

机构信息

Department of Chemistry, Indian Institute of Technology Ropar, Rupnagar, 140001, Punjab, India.

出版信息

ChemSusChem. 2025 Feb 16;18(4):e202401497. doi: 10.1002/cssc.202401497. Epub 2024 Nov 9.

Abstract

The catalytic functionalization of CO into high-value compounds comprises a promising approach to mitigate its atmospheric content and sustainable generation of fine chemicals. In this respect, covalent organic frameworks (COFs) offer great potential in carbon dioxide capture and utilization. Herein, we report application of a crystalline, nanoporous 2D COF (ET-BP-COF) obtained by condensation of 4,4',4'',4'''-(ethene-1,1,2,2-tetrayl) tetraaniline (ET-NH) and 2,2'-bipyridyl-5,5'-dialdehyde (BP-CHO) building blocks for strategic utilization of CO. The ET-BP-COF features a unique 2D kagome (kgm) topology composed of hexagonal and triangular 1D channels decorated with bipyridine sites, which were exploited for covalent anchoring of eco-friendly, alkynophilic Cu(I) by the post-synthetic method. The Cu(I) engrafted COF was applied as a recyclable catalyst for coupling CO with alkynes to generate two high-value compounds, α-alkylidene cyclic carbonates (α-ACCs) and 2-oxazolidinones. Notably, Cu(I)@ET-BP-COF demonstrated excellent catalytic performance for transforming propargylic amine and CO to 2-oxazolidinone, an essential building block for antibiotics. Besides, an efficient transformation of propargylic alcohols to generate α-ACCs, valuable commodity chemicals, has been achieved by utilizing carbon dioxide. Further, detailed theoretical simulations disclosed the insight mechanistic path of Cu(I) catalyzed coupling of CO and alkynes to produce 2-oxazolidinones and α-ACCs. Significantly, the Cu(I)@COF was reusable for multiple cycles without losing framework rigidity and catalytic performance. This study showcases the potential application of ET-BP-COF for stable anchoring of eco-friendly metals as catalytic sites for effective utilization of CO to produce two high-value products, 2-oxazolidinones and α-ACCs, under mild atmospheric conditions.

摘要

将一氧化碳催化功能化转化为高价值化合物是一种很有前景的方法,可用于减少其大气含量并可持续地生成精细化学品。在这方面,共价有机框架(COF)在二氧化碳捕获和利用方面具有巨大潜力。在此,我们报告了一种通过4,4',4'',4'''-(乙烯-1,1,2,2-四基)四苯胺(ET-NH)和2,2'-联吡啶-5,5'-二醛(BP-CHO)构建单元缩合得到的结晶性纳米多孔二维COF(ET-BP-COF)在一氧化碳战略利用中的应用。ET-BP-COF具有独特的二维 Kagome(kgm)拓扑结构,由六边形和三角形的一维通道组成,通道上装饰有联吡啶位点,通过后合成方法用于对环境友好的亲炔基Cu(I)进行共价锚定。负载Cu(I)的COF被用作可循环催化剂,用于使一氧化碳与炔烃偶联生成两种高价值化合物,α-亚烷基环状碳酸酯(α-ACC)和2-恶唑烷酮。值得注意的是,Cu(I)@ET-BP-COF在将炔丙胺和一氧化碳转化为2-恶唑烷酮(抗生素的重要结构单元)方面表现出优异的催化性能。此外,利用二氧化碳实现了炔丙醇高效转化生成α-ACC(有价值的商品化学品)。此外,详细的理论模拟揭示了Cu(I)催化一氧化碳与炔烃偶联生成2-恶唑烷酮和α-ACC的机理路径。重要的是,Cu(I)@COF可重复使用多个循环,而不会失去框架刚性和催化性能。这项研究展示了ET-BP-COF在稳定锚定环境友好金属作为催化位点方面的潜在应用,可在温和的大气条件下有效利用一氧化碳生产两种高价值产品,2-恶唑烷酮和α-ACC。

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