金属有机框架中的高效 IrIII 光敏剂与用于 C(sp3)-C/N-H 交叉偶联反应的双亲联吡啶基团

IF 11.3 1区 化学 Q1 CHEMISTRY, PHYSICAL ACS Catalysis Pub Date : 2024-10-25 DOI:10.1021/acscatal.4c04666
Yuan Chen, Ao-Gang Liu, Zi-Tong Chen, Xiao-Huan Liang, Jun-Tao Yan, Bao Li
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引用次数: 0

摘要

光催化技术为能源和环境问题提供了潜在的解决方案。光催化剂的性能直接影响光催化的效率。基于铱(III)的催化剂因其独特的电子结构和高催化活性而备受关注。然而,大多数 IrIII 催化剂都是均相催化剂,面临着稳定性低、难以回收利用等问题。为了提高IrIII催化剂的稳定性和可回收性,对异质IrIII催化剂的研究已成为热门话题。在本研究中,我们设计了一种含有联吡啶的四羧酸配体,并对其进行了双酞单元修饰,构建了具有 2 层互穿结构的 Zr 基金属有机框架(MOF),并通过后修饰引入 [IrIII(ppy)2]+ 单元,形成 Ir@Zr-MOF。这种异质结构提高了光能的利用率和光催化效率。除了原有锆团簇与双-亲联吡啶单元之间的电子传递途径外,理论模型的比较研究表明,[IrIII(ppy)2]+单元的引入降低了能级,增强了对500-550 nm范围内可见光的吸收,这与修饰后的双-亲联吡啶和[IrIII(ppy)2]+单元之间的电荷转移相对应。Ir@Zr-MOF 作为一种光催化剂,可以促进香豆素的三氟甲基化反应以及醚与芳基肼的氧化脱氢偶联反应。相关反应的转化率可达 95%。该机理推测,Ir@Zr-MOF 产生的超氧自由基和相应的空穴对于光催化反应至关重要。超氧自由基的产生可以通过 ESR 得到验证。此外,还通过理论模拟探讨了 Ir@Zr-MOF 与反应基质的主客体相互作用和空穴效应。这项工作为 IrIII 催化剂的异质化提供了一种策略,为制备光敏剂和提高光能利用率提供了启示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Efficient IrIII Photosensitizer Incorporated in the Metal–Organic Framework with the Bis-lophine-bipyridine Motif for C(sp3)-C/N–H Cross-Coupling Reactions
Photocatalytic technology offers a potential solution to energy and environmental issues. The performance of photocatalysts directly affects the efficiency of photocatalysis. Iridium(III)-based catalysts have garnered attention due to their unique electronic structure and high catalytic activity. However, most IrIII catalysts are homogeneous and face issues such as low stability and difficulty in recycling. The research on heterogeneous IrIII catalysts has become a hot topic, aiming to improve their stability and recyclability. In this study, we designed a tetracarboxylate ligand containing bipyridine modified with a bilophthalene unit, constructed a Zr-based metal–organic framework (MOF) with a 2-fold interpenetrating structure, and introduced [IrIII(ppy)2]+ units through postmodification to form Ir@Zr-MOF. The heterostructure enhanced the utilization of light energy and photocatalytic efficiency. Apart from the electron transfer pathway between the original zirconium clusters and the bis-lophine-bipyridine unit, comparative studies of theoretical models showed that the introduction of the [IrIII(ppy)2]+ unit reduced the energy level and enhanced the absorption of visible light in the 500–550 nm range, corresponding to the charge transfer between the modified bis-lophine-bipyridine and [IrIII(ppy)2]+ unit. Ir@Zr-MOF, as a photocatalyst, can facilitate the trifluoromethylation of coumarins and the oxidative dehydrogenative coupling reaction of ethers with aryl hydrazones. The conversion yields of the related reactions can reach up to 95%. The mechanism presumes that the generation of superoxide radicals and the corresponding holes produced by Ir@Zr-MOF are crucial for the photocatalytic reaction. The generation of superoxide radicals can be verified by ESR. The host–guest interactions and hole effects of Ir@Zr-MOF with reaction substrates were also explored through theoretical simulations. This work provides a strategy for the heterogenization of IrIII catalysts, offering insights for the preparation of photosensitizers and the enhancement of light energy utilization.
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来源期刊
ACS Catalysis
ACS Catalysis CHEMISTRY, PHYSICAL-
CiteScore
20.80
自引率
6.20%
发文量
1253
审稿时长
1.5 months
期刊介绍: ACS Catalysis is an esteemed journal that publishes original research in the fields of heterogeneous catalysis, molecular catalysis, and biocatalysis. It offers broad coverage across diverse areas such as life sciences, organometallics and synthesis, photochemistry and electrochemistry, drug discovery and synthesis, materials science, environmental protection, polymer discovery and synthesis, and energy and fuels. The scope of the journal is to showcase innovative work in various aspects of catalysis. This includes new reactions and novel synthetic approaches utilizing known catalysts, the discovery or modification of new catalysts, elucidation of catalytic mechanisms through cutting-edge investigations, practical enhancements of existing processes, as well as conceptual advances in the field. Contributions to ACS Catalysis can encompass both experimental and theoretical research focused on catalytic molecules, macromolecules, and materials that exhibit catalytic turnover.
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