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铋修饰的β沸石催化剂用于纤维素高选择性催化氧化制备生物质衍生的乙二醇酸。

Bismuth-Decorated Beta Zeolites Catalysts for Highly Selective Catalytic Oxidation of Cellulose to Biomass-Derived Glycolic Acid.

机构信息

State Key Laboratory of Materials-oriented Chemical Engineering, College of Chemical Engineering, School of Energy Science and Engineering, Nanjing Tech University, Nanjing 211816, China.

Joint International Research Laboratory of Biomass Energy and Materials, Jiangsu Co-Innovation Center of Efficient Processing and Utilization of Forest Resources, College of Materials Science and Engineering, Nanjing Forestry University, Nanjing 210037, China.

出版信息

Int J Environ Res Public Health. 2022 Dec 5;19(23):16298. doi: 10.3390/ijerph192316298.

Abstract

Catalytic conversion of cellulose to liquid fuel and highly valuable platform chemicals remains a critical and challenging process. Here, bismuth-decorated β zeolite catalysts (Bi/β) were exploited for highly efficient hydrolysis and selective oxidation of cellulose to biomass-derived glycolic acid in an O atmosphere, which exhibited an exceptionally catalytic activity and high selectivity as well as excellent reusability. It was interestingly found that as high as 75.6% yield of glycolic acid over 2.3 wt% Bi/β was achieved from cellulose at 180 °C for 16 h, which was superior to previously reported catalysts. Experimental results combined with characterization revealed that the synergetic effect between oxidation active sites from Bi species and surface acidity on H-β together with appropriate total surface acidity significantly facilitated the chemoselectivity towards the production of glycolic acid in the direct, one-pot conversion of cellulose. This study will shed light on rationally designing Bi-based heterogeneous catalysts for sustainably generating glycolic acid from renewable biomass resources in the future.

摘要

将纤维素转化为液体燃料和高附加值的平台化学品仍然是一个关键且具有挑战性的过程。在这里,采用负载铋的β沸石催化剂(Bi/β),在 O2 气氛中高效水解和选择性氧化纤维素制备生物质衍生的乙二醇酸。该催化剂表现出极高的催化活性和选择性,以及优异的可重复使用性。有趣的是,在 180°C 下反应 16 小时,纤维素的乙二醇酸收率高达 75.6%(基于 2.3wt% Bi/β),优于先前报道的催化剂。实验结果与表征相结合表明,Bi 物种的氧化活性位点与 H-β 表面酸度之间的协同作用以及适当的总表面酸度显著促进了纤维素的直接一锅转化中乙二醇酸的化学选择性生成。本研究将为未来从可再生生物质资源中合理设计用于可持续生成乙二醇酸的基于 Bi 的多相催化剂提供思路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fb3a/9738590/551c4428408d/ijerph-19-16298-g001.jpg

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