分子间作用力调控增强木质素催化解聚性能研究

    Research on the Regulation of Intermolecular Forces to Enhance the Catalytic Depolymerization Performance of Lignin

    • 摘要: 木质素是储量最丰富的天然芳香聚合物,其催化解聚产物可作为高值化学品和生物航油前体。然而,木质素复杂的结构和强分子间相互作用导致其在多数常规溶剂中溶解性差,而其溶剂化行为与催化剂界面作用机制尚不明确,限制了高效催化体系的开发。本文创新地采用原子力显微镜量化木质素分子间作用力及木质素−催化剂界面作用力,建立了木质素溶解行为与催化解聚性能的关联。通过超滤−溶剂分级获得分子量相近但极性不同的木质素组分,并结合分子动力学模拟研究其溶解与解聚行为。结果表明,可溶于乙醇的AL10-F1组分在乙醇中的分子间作用力为−0.036 mN/m,催化解聚获得的单酚收率的质量分数为16.13%,不溶于乙醇的AL10-F2的分子间作用力为−1.009 mN/m,单酚收率的质量分数仅为11.98%,木质素分子间作用力与催化解聚结果呈现良好的负相关性。分子动力学模拟证实,AL10-F1分子构象舒展、溶剂可及性高,且与催化剂作用力更强(−92.2 μN/m),有利于吸附和催化反应的进行。分子间作用力量化测定技术为木质素解聚溶剂的开发和催化剂设计提供了理论基础与技术支持。

       

      Abstract: Lignin is the most abundant natural aromatic polymer, and its catalytically depolymerized products can serve as precursors for high-value chemicals and biojet fuel. However, the mechanism of lignin solubilization and its interfacial interactions with catalysts remain unclear, limiting the development of highly efficient catalytic systems. In this study, atomic force microscopy is innovatively employed to quantify intermolecular forces within lignin and at the lignin-catalyst interface, establishing a correlation between lignin dissolution behavior and catalytic depolymerization performance. Lignin fractions with similar molecular weights but differing polarities were obtained via ultrafiltration and solvent fractionation, and their dissolution and depolymerization behaviors were investigated using molecular dynamics simulations. The results show that the intermolecular force of the ethanol-soluble AL10-F1 fraction in ethanol is −0.036 mN/m, and the monophenol yield obtained through catalytic depolymerization reaches 16.13%, while the intermolecular force of the ethanol-insoluble AL10-F2 component was −1.009 mN/m, with a monophenol yield of only 11.98%. A strong negative correlation was observed between the intermolecular forces of the lignin and the results of catalytic depolymerization. Molecular dynamics simulations confirmed that the AL10-F1 molecule has an extended conformation, high solvent accessibility, and stronger interactions with the catalyst (−92.2 μN/m) , which facilitates adsorption and the catalytic reaction. The technique for quantifying intermolecular forces provides a theoretical foundation and technical support for the development of lignin depolymerization solvents and catalyst design.

       

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