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首页> 外文期刊>ACS Sustainable Chemistry & Engineering >Assessing the Facile Pretreatments of Bagasse for Efficient Enzymatic Conversion and Their Impacts on Structural and Chemical Properties
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Assessing the Facile Pretreatments of Bagasse for Efficient Enzymatic Conversion and Their Impacts on Structural and Chemical Properties

机译:评估BAGASSE的容易预处理,以获得高效的酶转化及其对结构和化学性质的影响

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摘要

Novel and sustainable pretreatment approaches are desired to improve the techno-commercial feasibility of biorefineries in the future. In this study, 10 renewable deep eutectic solvents (DESs) were evaluated for their pretreatment efficiency at facile conditions with sugar cane bagasse as substrate and compared with conventional pretreatment approaches (dilute alkali, dilute acid, and ionic liquid (IL)) for lignin removal, saccharification yield, cellulose accessibility, crystallinity, and physiochemical properties. Although, the highest delignification was obtained with dilute alkali (S9.7%) and choline chloride:lactic acid or ChCl:LA (50.6%), the maximum enzymatic conversion of 98.0% and 90.4% was observed with IL (1-butyl-3-methylimidazolium acetate) and ChCl:LA, respectively. uclear magnetic resonance analysis of ChCl:LA-derived lignin showed selective removal of guaiacyl lignin without condensation structure formation observed. Interestingly, unlike IL, the lignin was substantially depolymerized after ChCl:LA pretreatment as determined by gel permeation chromatography. Further, high compatibility of ChCl:LA with cellulase in comparison of IL with easy recyclability and recycling showed that DESs synthesized from a renewable resource are promising "green" solvents for future biorefinery operations.
机译:希望在未来提高生物归档的技术商业可行性的新颖和可持续的预处理方法。在本研究中,评估了10种可再生深层共晶溶剂(DES),以甘蔗甘蔗渣作为基质的含糖条件,并与常规预处理方法(稀碱,稀酸和离子液体(IL))进行木质素去除,糖化产率,纤维素可接近性,结晶度和生理化学性质。虽然,用稀碱(S9.7%)和胆碱:乳酸或CHCl:LA(50.6%),用IL(1-丁基 - 丁基 - 分别为3-甲基咪唑鎓乙酸铵)和CHCL:LA。 CHCL的缺失磁共振分析:La-er-衍生的木质素显示出在没有观察到的凝结结构的情况下选择性去除Guaiacyl木质素。有趣的是,与IL不同,木质素在CHCL:LA预处理后基本上解聚,通过凝胶渗透色谱法测定。此外,ChCl:La与纤维素酶的高相容性相比,IL具有易再循环性和再循环的IL,表明,从可再生资源合成的DES是对未来生物犯规操作的“绿色”溶剂。

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