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磷酸加过氧化氢预处理过程中自生过氧乙酸介导木质纤维素解构与脱木质素。

Self-generated peroxyacetic acid in phosphoric acid plus hydrogen peroxide pretreatment mediated lignocellulose deconstruction and delignification.

作者信息

Tian Dong, Chen Yiyi, Shen Fei, Luo Maoyuan, Huang Mei, Hu Jinguang, Zhang Yanzong, Deng Shihuai, Zhao Li

机构信息

Institute of Ecological and Environmental Sciences, Sichuan Agricultural University, Chengdu, 611130, Sichuan, People's Republic of China.

Department of Chemical and Petroleum Engineering, University of Calgary, 2500 University Dr. NW, Calgary, AB, T2N 1N4, Canada.

出版信息

Biotechnol Biofuels. 2021 Nov 25;14(1):224. doi: 10.1186/s13068-021-02075-w.

Abstract

BACKGROUND

Peroxyacetic acid involved chemical pretreatment is effective in lignocellulose deconstruction and oxidation. However, these peroxyacetic acid are usually artificially added. Our previous work has shown that the newly developed PHP pretreatment (phosphoric acid plus hydrogen peroxide) is promising in lignocellulose biomass fractionation through an aggressive oxidation process, while the information about the synergistic effect between HPO and HO is quite lack, especially whether some strong oxidant intermediates is existed. In this work, we reported the PHP pretreatment system could self-generate peroxyacetic acid oxidant, which mediated the overall lignocellulose deconstruction, and hemicellulose/lignin degradation.

RESULTS

The PHP pretreatment profile on wheat straw and corn stalk were investigated. The pathways/mechanisms of peroxyacetic acid mediated-PHP pretreatment were elucidated through tracing the structural changes of each component. Results showed that hemicellulose was almost completely solubilized and removed, corresponding to about 87.0% cellulose recovery with high digestibility. Rather high degrees of delignification of 83.5% and 90.0% were achieved for wheat straw and corn stalk, respectively, with the aid of peroxyacetic acid oxidation. A clearly positive correlation was found between the concentration of peroxyacetic acid and the extent of lignocellulose deconstruction. Peroxyacetic acid was mainly self-generated through HO oxidation of acetic acid that was produced from hemicellulose deacetylation and lignin degradation. The self-generated peroxyacetic acid then further contributed to lignocellulose deconstruction and delignification.

CONCLUSIONS

The synergistic effect of HPO and HO in the PHP solvent system could efficiently deconstruct wheat straw and corn stalk lignocellulose through an oxidation-mediated process. The main function of HPO was to deconstruct biomass recalcitrance and degrade hemicellulose through acid hydrolysis, while the function of HO was to facilitate the formation of peroxyacetic acid. Peroxyacetic acid with stronger oxidation ability was generated through the reaction between HO and acetic acid, which was released from xylan and lignin oxidation/degradation. This work elucidated the generation and function of peroxyacetic acid in the PHP pretreatment system, and also provide useful information to tailor peroxide-involved pretreatment routes, especially at acidic conditions.

摘要

背景

过氧乙酸参与的化学预处理在木质纤维素解构和氧化方面是有效的。然而,这些过氧乙酸通常是人工添加的。我们之前的工作表明,新开发的PHP预处理(磷酸加过氧化氢)通过积极的氧化过程在木质纤维素生物质分级方面具有前景,而关于HPO和HO之间协同效应的信息相当缺乏,特别是是否存在一些强氧化剂中间体。在这项工作中,我们报道了PHP预处理系统可以自我生成过氧乙酸氧化剂,其介导了整体木质纤维素的解构以及半纤维素/木质素的降解。

结果

研究了PHP预处理对小麦秸秆和玉米秸秆的作用情况。通过追踪各组分的结构变化阐明了过氧乙酸介导的PHP预处理的途径/机制。结果表明,半纤维素几乎完全溶解并去除,相应地纤维素回收率约为87.0%,且具有高消化率。借助过氧乙酸氧化,小麦秸秆和玉米秸秆分别实现了83.5%和90.0%的较高脱木素程度。过氧乙酸浓度与木质纤维素解构程度之间存在明显的正相关。过氧乙酸主要通过HO氧化由半纤维素脱乙酰化和木质素降解产生的乙酸而自我生成。然后,自我生成的过氧乙酸进一步促进了木质纤维素的解构和脱木素。

结论

PHP溶剂体系中HPO和HO的协同效应可以通过氧化介导的过程有效地解构小麦秸秆和玉米秸秆木质纤维素。HPO的主要功能是通过酸水解解构生物质顽固性并降解半纤维素,而HO的功能是促进过氧乙酸的形成。HO与从木聚糖和木质素氧化/降解中释放的乙酸反应生成了氧化能力更强的过氧乙酸。这项工作阐明了过氧乙酸在PHP预处理系统中的生成和功能,也为定制涉及过氧化物的预处理路线提供了有用信息,特别是在酸性条件下。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/93e2/8614055/bf31cff3b74c/13068_2021_2075_Fig1_HTML.jpg

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