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基于铬基金属有机框架负载的单金属铜催化剂在超临界乙醇中对碱木质素进行催化氢解以高效生产芳香族单体

Catalytic hydrogenolysis of alkali lignin in supercritical ethanol over copper monometallic catalyst supported on a chromium-based metal-organic framework for the efficient production of aromatic monomers.

作者信息

Tran My Ha, Phan Dieu-Phuong, Nguyen Thuy Ha, Kim Han Bom, Kim Jinsoo, Park Eun Duck, Lee Eun Yeol

机构信息

Department of Chemical Engineering (Integrated Engineering), Kyung Hee University, Yongin-si, Gyeonggi-do 17104, Republic of Korea.

Department of Chemical Engineering and Energy Systems Research, Ajou University, Suwon-si, Gyeonggi-do 16499, Republic of Korea.

出版信息

Bioresour Technol. 2021 Dec;342:125941. doi: 10.1016/j.biortech.2021.125941. Epub 2021 Sep 14.

Abstract

The catalytic hydrogenolysis of lignin has been reported as an effective approach for lignin depolymerization owing to its high efficiency for aromatic monomer production. In this study, a series of copper monometallic catalysts over an MIL-101(Cr) support were synthesized and used for the catalytic hydrogenolysis of alkali lignin using supercritical ethanol. First, the optimal copper catalyst for lignin hydrogenolysis was selected. Subsequently, the reaction conditions for catalytic hydrogenolysis were systematically optimized to maximize the total monomer yield. The optimal conditions were determined to be 6 h of reaction time, 20 min of sonication pretreatment, 50% catalyst loading, and 5% lignin loading. Under these conditions, an aromatic monomer yield of 38.5% was obtained; this depolymerized lignin stream, which is mainly composed of G-type monomers, can serve as a promising aromatic feedstock and carbon source for further microbial upgrading and bioconversion to produce various value-added products.

摘要

由于木质素催化氢解在生产芳香族单体方面具有高效率,因此它已被报道为一种有效的木质素解聚方法。在本研究中,合成了一系列负载在MIL-101(Cr)载体上的铜单金属催化剂,并将其用于使用超临界乙醇对碱木质素进行催化氢解。首先,选择了用于木质素氢解的最佳铜催化剂。随后,系统地优化了催化氢解的反应条件,以使总单体产率最大化。确定最佳条件为反应时间6小时、超声预处理20分钟、催化剂负载量50%和木质素负载量5%。在这些条件下,获得了38.5%的芳香族单体产率;这种主要由G型单体组成的解聚木质素流,可以作为一种有前景的芳香族原料和碳源,用于进一步的微生物升级和生物转化,以生产各种增值产品。

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