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全链式 FeCl 催化足以促进纤维素酶分泌和纤维素乙醇的生产,同时利用理想的玉米秸秆制备出有价值的超级电容器和生物吸附剂。

Full-Chain FeCl Catalyzation Is Sufficient to Boost Cellulase Secretion and Cellulosic Ethanol along with Valorized Supercapacitor and Biosorbent Using Desirable Corn Stalk.

机构信息

Biomass & Bioenergy Research Center, College of Plant Science & Technology, Huazhong Agricultural University, Wuhan 430070, China.

Key Laboratory of Fermentation Engineering (Ministry of Education), National "111" Center for Cellular Regulation & Molecular Pharmaceutics, Cooperative Innovation Center of Industrial Fermentation (Ministry of Education & Hubei Province), College of Biotechnology & Food Science, Hubei Key Laboratory of Industrial Microbiology, Hubei University of Technology, Wuhan, 430068, China.

出版信息

Molecules. 2023 Feb 22;28(5):2060. doi: 10.3390/molecules28052060.

Abstract

Cellulosic ethanol is regarded as a perfect additive for petrol fuels for global carbon neutralization. As bioethanol conversion requires strong biomass pretreatment and overpriced enzymatic hydrolysis, it is increasingly considered in the exploration of biomass processes with fewer chemicals for cost-effective biofuels and value-added bioproducts. In this study, we performed optimal liquid-hot-water pretreatment (190 °C for 10 min) co-supplied with 4% FeCl to achieve the near-complete biomass enzymatic saccharification of desirable corn stalk for high bioethanol production, and all the enzyme-undigestible lignocellulose residues were then examined as active biosorbents for high Cd adsorption. Furthermore, by incubating with the desired corn stalk co-supplied with 0.05% FeCl for the secretion of lignocellulose-degradation enzymes in vivo, we examined five secreted enzyme activities elevated by 1.3-3.0-fold in vitro, compared to the control without FeCl supplementation. After further supplying 1:2 (/) FeCl into the . -undigested lignocellulose residue for the thermal-carbonization process, we generated highly porous carbon with specific electroconductivity raised by 3-12-fold for the supercapacitor. Therefore, this work demonstrates that FeCl can act as a universal catalyst for the full-chain enhancement of biological, biochemical, and chemical conversions of lignocellulose substrates, providing a green-like strategy for low-cost biofuels and high-value bioproducts.

摘要

纤维素乙醇被认为是实现全球碳中性的理想汽油添加剂。由于生物乙醇转化需要强烈的生物质预处理和昂贵的酶解,因此越来越多的人开始探索使用更少化学物质的生物质工艺,以生产具有成本效益的生物燃料和高附加值的生物制品。在这项研究中,我们进行了最佳的液态热水预处理(190°C 持续 10 分钟),并同时添加 4%的 FeCl,以实现理想的玉米秸秆的近乎完全的生物质酶糖化,从而生产出高浓度的生物乙醇,并且所有未被酶消化的木质纤维素残留物都被用作高效 Cd 吸附的活性生物吸附剂。此外,通过用含有 0.05%FeCl 的理想玉米秸秆共培养,我们在体内检测到木质纤维素降解酶的分泌,与不添加 FeCl 的对照组相比,体外酶活性提高了 1.3-3.0 倍。进一步将 1:2(/)FeCl 供应到未被酶消化的木质纤维素残留物中,进行热碳化过程,我们生成了具有高导电性的多孔碳,比表面积提高了 3-12 倍,可用于超级电容器。因此,这项工作表明,FeCl 可以作为木质纤维素底物的生物、生化和化学转化的全链增强的通用催化剂,为低成本生物燃料和高价值生物制品提供了一种绿色策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/47d3/10004197/6d3fa60e6dcc/molecules-28-02060-g001.jpg

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