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钌单原子催化剂上生物质BHMF加氢制备用于可再生聚合物的BHMTHF的反应机理与速率

The Reaction Mechanism and Rates at Ru Single-Atom Catalysts for Hydrogenation of Biomass BHMF to Produce BHMTHF for Renewable Polymers.

作者信息

Huai Liyuan, Zhang Jian, Goddard William A

机构信息

Ningbo Institute of Materials Technology & Engineering, Chinese Academy of Sciences, 1219 Zhongguan West Road, Ningbo, Zhejiang 315201, China.

University of the Chinese Academy of Sciences, Beijing 100049, China.

出版信息

J Am Chem Soc. 2024 Nov 13;146(45):31251-31263. doi: 10.1021/jacs.4c11551. Epub 2024 Nov 1.

Abstract

Realizing high selectivity for producing biodegradable 2,5-bis(hydroxymethyl)tetrahydrofuran (BHMTHF) for renewable polymers from 5-hydroxymethylfurfural (HMF) biomass through ring hydrogenation on single-atom catalysts poses a considerable challenge due to the complexity of HMF functional groups and the difficulty of H dissociation. We developed a detailed reaction mechanism based on molecular dynamics (AIMD) and quantum mechanics (QM) to find that Ru single-atom catalysts can simultaneously dissociate H and perform the ring hydrogenation of biomass-derived 2,5-bis(hydroxymethyl)furan (BHMF) to produce biodegradable BHMTHF, with a free energy barrier of 0.82 eV. The unique property of Ru single-atom sites enables H to dissociate easily on a single active site of Ru to participate directly in the reaction without diffusion. Furthermore, our predicted reaction rate from microkinetic analysis indicates that ring hydrogenation and side-chain hydrogenolysis are much faster than ring-opening hydrogenation over the range of 300-550 K. The product BHMTHF dominates with a selectivity of 98.9% at 300 and 78.4% at 550 K (the second product is 5-methylfurfural (5-MFA)). This study underscores the unique effectiveness of Ru single atoms in ring hydrogenation reactions using H as the hydrogen source, offering insights for the design of single-atom catalysts for other biomass reactions.

摘要

通过单原子催化剂上的环加氢反应,从5-羟甲基糠醛(HMF)生物质中制备用于可再生聚合物的可生物降解的2,5-双(羟甲基)四氢呋喃(BHMTHF),实现高选择性是一项颇具挑战的任务,这是由于HMF官能团的复杂性以及H解离的困难。我们基于分子动力学(AIMD)和量子力学(QM)开发了详细的反应机理,发现Ru单原子催化剂可以同时使H解离,并对生物质衍生的2,5-双(羟甲基)呋喃(BHMF)进行环加氢反应,生成可生物降解的BHMTHF,自由能垒为0.82 eV。Ru单原子位点的独特性质使H能够在Ru的单个活性位点上轻松解离,直接参与反应而无需扩散。此外,我们通过微观动力学分析预测的反应速率表明,在300-550 K范围内,环加氢和侧链氢解比开环加氢快得多。产物BHMTHF占主导地位,在300 K时选择性为98.9%,在550 K时选择性为78.4%(第二种产物是5-甲基糠醛(5-MFA))。这项研究强调了Ru单原子在以H为氢源的环加氢反应中的独特有效性,为设计用于其他生物质反应的单原子催化剂提供了见解。

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