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Effect of constituents molar ratios of deep eutectic solvents on rice straw fractionation efficiency and the micro-mechanism investigation

机译:深层共晶溶剂成分摩尔比对水稻秸秆分级效率及微机制调查的影响

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摘要

Effective obtaining fermentable sugars and other platform chemicals from rice straw mediated by choline chloride- oxalic acid dihydrate (CO) and the corresponding micro-mechanism investigation were conducted in this work. Choosing a suitable constituents molar ratio of CO appeared to be a feasible method to achieve an appropriate pretreatment severity for a good biomass fractionation. Pretreatment by using CO with high oxalic acid dihydrate to choline chloride molar ratio could afford easily digestible cellulose-rich materials (CMRs, & 80% of enzymatic digestion) and lignin-rich materials (LRMs) of high purity (& 82%) due to extensive hemicellulose removal (& 93%) and delignification (around 70%). Cell wall microstructure characterizations based on confocal laser scanning microscopy (CLSM) and transmission electron microscopy (TEM) verified the stronger xylan and lignin removal ability of CO with higher oxalic acid dihydrate content. Moreover, the considerable removal of xylan confirmed by CLSM was beneficial to delignification and the subsequent cellulose enzymatic hydrolysis. Furthermore, ultra-structural changes of lignin distribution in cell walls based on TEM indicated the occurrence of partial delignification, preferentially in cell corner (CC) and compound middle lumen (CML) rather than in the secondary cell walls. These findings provides a new insight into the detailed mechanism of acidic DESs mediated biomass deconstruction.
机译:在这项工作中,通过胆碱 - 草酸二水合物(CO)介导的水稻秸秆和相应的微机制研究有效获得可发酵的糖和其他平台化学品。选择合适的CO的组分摩尔比似乎是实现适当的预处理严重性的可行方法,用于良好的生物质分馏。用高草酸二水合物使用与胆碱氯化氢摩尔比的预处理可提供易消化的纤维素的材料(CMRS,& 80%的酶消化)和高纯度的木质素 - 富含材料(LINGIN的材料)(& gt ; 82%)由于广泛的半纤维素去除(& 93%)和脱泻(约70%)。基于共聚焦激光扫描显微镜(CLSM)和透射电子显微镜(TEM)的细胞壁微观结构特征验证了具有较高草酸二水合物含量的CO的较强的木环和木质素去除能力。此外,CLSM证实的Xylan的相当大的去除是有益的亚胺和随后的纤维素酶水解。此外,基于TEM的细胞壁中木质素分布的超结构变化表明了部分脱节剂的发生,优先于细胞角(CC)和化合物中间腔(CML)而不是在次级细胞壁中。这些调查结果对酸性DES介导的生物质解构的详细机制提供了新的洞察力。

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