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通过离子液体和反溶剂预处理将纤维素完全化学水解为可发酵糖。

Complete chemical hydrolysis of cellulose into fermentable sugars through ionic liquids and antisolvent pretreatments.

作者信息

Morales-delaRosa Silvia, Campos-Martin Jose M, Fierro Jose L G

机构信息

Sustainable Energy and Chemistry Group (EQS), Instituto de Catálisis y Petroleoquímica, CSIC, Marie Curie, 2 Cantoblanco, 28049 Madrid (Spain) http://www.icp.csic.es/eqsgroup/

出版信息

ChemSusChem. 2014 Dec;7(12):3467-75. doi: 10.1002/cssc.201402466. Epub 2014 Sep 25.

Abstract

This work describes a relatively simple methodology for efficiently deconstructing cellulose into monomeric glucose, which is more easily transformed into a variety of platform molecules for the production of chemicals and fuels. The approach undertaken herein first involves the dissolution of cellulose in an ionic liquid (IL), followed by a second reconstruction step aided by an antisolvent. The regenerated cellulose exhibited strong structural and morphological changes, as revealed by XRD and SEM analyses. These changes dramatically affect the hydrolytic reactivity of cellulose with dilute mineral acids. As a consequence, the glucose yield obtained from the deconstructed-reconstructed cellulose was substantially higher than that achieved through hydrolysis of the starting cellulose. Factors that affect the hydrolysis reaction include the type of cellulose substrate, the type of IL used in pretreatment, and the type of acid used in the hydrolysis step. The best results were obtained by treating cellulose with IL and using phosphotungstic acid (0.067 mol L(-1) ) as a catalyst at 413 K. Under these conditions, the conversion of cellulose was almost complete (>99%), with a glucose yield of 87% after only 5 h of reaction.

摘要

这项工作描述了一种相对简单的方法,可有效地将纤维素解构为单体葡萄糖,而单体葡萄糖更易于转化为多种用于生产化学品和燃料的平台分子。本文采用的方法首先涉及将纤维素溶解在离子液体(IL)中,随后在抗溶剂的辅助下进行第二步重构。如XRD和SEM分析所示,再生纤维素呈现出强烈的结构和形态变化。这些变化极大地影响了纤维素与稀无机酸的水解反应活性。因此,从解构-重构纤维素中获得的葡萄糖产率显著高于通过起始纤维素水解所达到的产率。影响水解反应的因素包括纤维素底物的类型、预处理中使用的离子液体的类型以及水解步骤中使用的酸的类型。通过用离子液体处理纤维素并在413K下使用磷钨酸(0.067 mol·L⁻¹)作为催化剂可获得最佳结果。在这些条件下,纤维素的转化率几乎达到100%(>99%),仅反应5小时后葡萄糖产率就达到了87%。

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