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Assessing the molecular structure basis for biomass recalcitrance during dilute acid and hydrothermal pretreatments

机译:评估稀酸和水热预处理过程中生物质难降解的分子结构基础

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摘要

The production of cellulosic ethanol from biomass is considered a promising alternative to reliance on diminishing supplies of fossil fuels, providing a sustainable option for fuels production in an environmentally compatible manner. The conversion of lignocellulosic biomass to biofuels through a biological route usually suffers from the intrinsic recalcitrance of biomass owing to the complicated structure of plant cell walls. Currently, a pretreatment step that can effectively reduce biomass recalcitrance is generally required to make the polysaccharide fractions locked in the intricacy of plant cell walls to become more accessible and amenable to enzymatic hydrolysis. Dilute acid and hydrothermal pretreatments are attractive and among the most promising pretreatment technologies that enhance sugar release performance. This review highlights our recent understanding on molecular structure basis for recalcitrance, with emphasis on structural transformation of major biomass biopolymers (i.e., cellulose, hemicellulose, and lignin) related to the reduction of recalcitrance during dilute acid and hydrothermal pretreatments. The effects of these two pretreatments on biomass porosity as well as its contribution on reduced recalcitrance are also discussed.
机译:从生物质生产纤维素乙醇被认为是减少化石燃料供应的有前途的替代方法,为以环境兼容的方式生产燃料提供了可持续的选择。由于植物细胞壁的复杂结构,木质纤维素生物质通过生物途径向生物燃料的转化通常遭受生物质固有的顽固性。当前,通常需要能够有效降低生物质难降解性的预处理步骤,以使锁定在植物细胞壁复杂性中的多糖级分变得更容易获得并易于进行酶促水解。稀酸和水热预处理很有吸引力,并且是增强糖释放性能的最有前途的预处理技术之一。这篇综述着重介绍了我们最近对难降解的分子结构基础的理解,重点是与稀酸和水热预处理过程中难降解性降低有关的主要生物质生物聚合物(即纤维素,半纤维素和木质素)的结构转化。还讨论了这两种预处理对生物质孔隙率的影响及其对降低顽固性的贡献。

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