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负载于木质素功能化酚醛树脂上的非碳化钯单原子催化剂用于木质素衍生醛的高效催化转移氢化反应

Non-Carbonized Pd Single-Atom Catalyst Supported on Lignin-Functionalized Phenolic Resin for Potent Catalytic Transfer Hydrogenation of Lignin-Derived Aldehydes.

作者信息

Pang Tairan, Xue Zhenglong, Wang Guanhua, Li Junkai, Sui Wenjie, Si Chuanling

机构信息

State Key Laboratory of Bio-based Fiber Materials, Tianjin Key Laboratory of Pulp and Paper, College of Light Industry Science and Engineering, Tianjin University of Science and Technology, Tianjin, 300457, China.

State Key Laboratory of Food Nutrition and Safety, College of Food Science and Engineering, Tianjin University of Science and Technology, Tianjin, 300457, China.

出版信息

Angew Chem Int Ed Engl. 2025 Jun 2;64(23):e202503195. doi: 10.1002/anie.202503195. Epub 2025 Apr 3.

Abstract

Single-atom catalysts (SACs) depend significantly on their support properties, and organic polymers have emerged as promising candidates due to their tunable physicochemical properties and diverse functional groups. However, the high-temperature carbonization commonly required for conventional organic polymer-supported SAC fabrication often leads to the loss of these functional groups, thus weakening metal-support interactions and catalytic performance accordingly. Herein, we report a sustainable strategy to synthesize nitrogen-functionalized lignin-based phenolic resin (N-LPR) supports for stabilizing atomically dispersed palladium (Pd) without carbonization. Using ammonia solution (NH·HO) as both the nitrogen source and catalyst, high molecular weight lignin fractions (L3) were transformed into N-L3PR-50% supports with a unique nano-chain-like structure, high surface area, and abundant amine groups, which can directly anchor Pd sites under room temperature. The resulting Pd@N-L3PR-50% catalyst achieved approximately 100% vanillin conversion and 97.91% selectivity for 2-methoxy-4-methylphenol at 80 °C with excellent cycle stability and adaptability to lignin-derived aldehydes, benefiting from the stable Pd-N coordination and the good adsorption capacity provided by the N-L3PR-50% support. Consequently, this work not only demonstrates a straightforward non-carbonation strategy to prepare lignin-based SACs for potent biomass-derived chemical transformations but also provides a novel avenue for the application of conventional multifunctional organic polymers as support for SACs.

摘要

单原子催化剂(SACs)在很大程度上依赖于其载体的性质,而有机聚合物因其可调节的物理化学性质和多样的官能团而成为有前景的候选载体。然而,传统的有机聚合物负载型SAC制备通常所需的高温碳化常常导致这些官能团的损失,从而相应地削弱了金属-载体相互作用和催化性能。在此,我们报道了一种可持续的策略,用于合成氮官能化的木质素基酚醛树脂(N-LPR)载体,以在不碳化的情况下稳定原子分散的钯(Pd)。使用氨水溶液(NH·HO)作为氮源和催化剂,高分子量木质素级分(L3)被转化为具有独特纳米链状结构、高比表面积和丰富胺基的N-L3PR-50%载体,其可以在室温下直接锚定Pd位点。所得的Pd@N-L3PR-50%催化剂在80°C下实现了约100%的香草醛转化率和97.91%的对2-甲氧基-4-甲基苯酚的选择性,具有优异的循环稳定性以及对木质素衍生醛的适应性,这得益于稳定的Pd-N配位以及N-L3PR-50%载体提供的良好吸附能力。因此,这项工作不仅展示了一种直接的非碳化策略来制备用于高效生物质衍生化学转化的木质素基SACs,而且为将传统多功能有机聚合物用作SACs的载体提供了一条新途径。

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