双酸功能化共价有机框架催化桉木预水解液衍生低聚木糖转化为糠醛

IF 7.7 2区 工程技术 Q1 CHEMISTRY, APPLIED
Peng Gan, Kai Zhang, Jingli Yang, Baobin Wang, Guihua Yang, Chengcheng Qiao, Lei Zhang, Jiachuan Chen
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引用次数: 0

摘要

应用生物炼制技术将低聚木糖(XOS)从制浆过程转化为生物燃料或高价值化学品,对于扩大纸浆和造纸工业的价值链具有巨大潜力,同时促进可持续性。本研究合成了一系列双酸功能化共价有机框架(COFs),催化XOS一步液相转化为糠醛。结果表明,TAPT-DHPA具有良好的催化活性,在0.16 wt%的催化剂作用下,180°C反应3 h,糠醛收率为78.6%。此外,TAPT-DHPA表现出优异的稳定性,在重复使用6次后,糠醛收率保持在77%以上。通过VASP软件进行的Bader电荷分析显示,在tpt - dhpa中存在Brønsted和Lewis酸活性位点,它们分别是由酚羟基上氢的电离和三嗪环的强吸电子性质引起的。这些特性是tpt - dhpa具有优异催化性能的关键因素。密度泛函数理论计算证实,最有利的糠醛生产途径涉及环酸酐中间体,限速步骤是质子攻击2-OH基团引发d -木糖的初始脱水。TAPT-DHPA的加入使这一限速步骤的活化能降低了54.43%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Catalytic conversion of eucalyptus pre-hydrolysis liquor-derived xylo-oligosaccharides to furfural using dual-acidic functionalized covalent organic frameworks
The application of biorefinery technologies to convert xylo-oligosaccharide (XOS) from pulping process into biofuels or high-value chemicals holds significant potential for extending the value chain of the pulp and paper industry, while simultaneously promoting sustainability. In this study, a series of dual-acid functionalized covalent organic frameworks (COFs) were synthesized to catalyze the one-step liquid-phase conversion of XOS into furfural. The results indicated that TAPT-DHPA exhibited exceptional catalytic activity, achieving a furfural yield of 78.6 % at 180 °C for 3 h with 0.16 wt% catalyst. Furthermore, TAPT-DHPA demonstrated excellent stability, maintaining a furfural yield above 77 % after six reuse cycles. Bader charge analysis via VASP software revealed the presence of both Brønsted and Lewis acid active sites in TAPT-DHPA, arising from the ionization of hydrogen in phenolic hydroxyl groups and the strong electron-withdrawing nature of the triazine ring, respectively. These characteristics are key factors in TAPT-DHPA's superior catalytic performance. Density functional theory calculations confirmed that the most favorable pathway for furfural production involves a cyclic anhydride intermediate, with the rate-limiting step being the initial dehydration of D-xylose triggered by proton attack on the 2-OH group. The addition of TAPT-DHPA reduced the activation energy of this rate-limiting step by 54.43 %.
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来源期刊
Fuel Processing Technology
Fuel Processing Technology 工程技术-工程:化工
CiteScore
13.20
自引率
9.30%
发文量
398
审稿时长
26 days
期刊介绍: Fuel Processing Technology (FPT) deals with the scientific and technological aspects of converting fossil and renewable resources to clean fuels, value-added chemicals, fuel-related advanced carbon materials and by-products. In addition to the traditional non-nuclear fossil fuels, biomass and wastes, papers on the integration of renewables such as solar and wind energy and energy storage into the fuel processing processes, as well as papers on the production and conversion of non-carbon-containing fuels such as hydrogen and ammonia, are also welcome. While chemical conversion is emphasized, papers on advanced physical conversion processes are also considered for publication in FPT. Papers on the fundamental aspects of fuel structure and properties will also be considered.
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