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Breakdown of Cell Wall Nanostructure in Dilute Acid Pretreated Biomass

机译:稀酸预处理生物质中细胞壁纳米结构的分解

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The generation of bioethanol from lignocellulosic biomass holds great promise for renewable and clean energy production. A better understanding of the complex mechanisms of lignocellulose breakdown during various pretreatment methods is needed to realize this potential in a cost and energy efficientway. Here we use small-angle neutron scattering (SANS) to characterize morphological changes in switchgrass lignocellulose across molecular to submicrometer length scales resulting from the industrially relevant dilute acid pretreatment method. Our results demonstrate that dilute acid pretreatment increases the cross-sectional radius of the crystalline cellulose fibril. This change is accompanied by removal of hemicellulose and the formation of R_g ~135 A lignin aggregates. The structural signature of smooth cell wall surfaces is observed at length scales larger than 1000 A, and it remains remarkably invariable during pretreatment. This study elucidates the interplay of the different biomolecular components in the breakdown process of switchgrass by dilute acid pretreatment. The results are important for the development of efficient strategies of biomass to biofuel conversion.
机译:由木质纤维素生物质产生生物乙醇具有可再生和清洁能源生产的广阔前景。需要对各种预处理方法中木质纤维素分解的复杂机制有更好的了解,才能以成本和能源效率的方式实现这一潜力。在这里,我们使用小角度中子散射(SANS)来表征由工业相关的稀酸预处理方法导致的柳枝木质纤维素在分子至亚微米长度范围内的形态变化。我们的结果表明,稀酸预处理会增加结晶纤维素原纤维的横截面半径。这种变化伴随着半纤维素的去除和R_g〜135A木质素聚集体的形成。在大于1000 A的长度尺度上观察到了光滑细胞壁表面的结构特征,并且在预处理过程中它仍然保持不变。这项研究阐明了稀酸预处理在柳枝breakdown分解过程中不同生物分子成分之间的相互作用。这些结果对于开发有效的生物质转化为生物燃料的策略非常重要。

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