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龙舌兰渣与城市固体废物混合物的三元离子液体-水预处理系统

Ternary ionic liquid-water pretreatment systems of an agave bagasse and municipal solid waste blend.

作者信息

Perez-Pimienta Jose A, Sathitsuksanoh Noppadon, Thompson Vicki S, Tran Kim, Ponce-Noyola Teresa, Stavila Vitalie, Singh Seema, Simmons Blake A

机构信息

Department of Chemical Engineering, Universidad Autónoma de Nayarit, Tepic, Mexico.

Department of Chemical Engineering and Conn Center for Renewable Energy Research, University of Louisville, Louisville, KY USA.

出版信息

Biotechnol Biofuels. 2017 Mar 21;10:72. doi: 10.1186/s13068-017-0758-4. eCollection 2017.

Abstract

BACKGROUND

Pretreatment is necessary to reduce biomass recalcitrance and enhance the efficiency of enzymatic saccharification for biofuel production. Ionic liquid (IL) pretreatment has gained a significant interest as a pretreatment process that can reduce cellulose crystallinity and remove lignin, key factors that govern enzyme accessibility. There are several challenges that need to be addressed for IL pretreatment to become viable for commercialization, including IL cost and recyclability. In addition, it is unclear whether ILs can maintain process performance when utilizing low-cost, low-quality biomass feedstocks such as the paper fraction of municipal solid waste (MSW), which are readily available in high quantities. One approach to potentially reduce IL cost is to use a blend of ILs at different concentrations in aqueous mixtures. Herein, we describe 14 IL-water systems with mixtures of 1-ethyl-3-ethylimidazolium acetate ([CCIm][OAc]), 1-butyl-3-ethylimidazolium acetate ([CCIm][OAc]), and water that were used to pretreat MSW blended with agave bagasse (AGB). The detailed analysis of IL recycling in terms of sugar yields of pretreated biomass and IL stability was examined.

RESULTS

Both biomass types (AGB and MSW) were efficiently disrupted by IL pretreatment. The pretreatment efficiency of [CCIm][OAc] and [CCIm][OAc] decreased when mixed with water above 40%. The AGB/MSW (1:1) blend demonstrated a glucan conversion of 94.1 and 83.0% using IL systems with ~10 and ~40% water content, respectively. Chemical structures of fresh ILs and recycle ILs presented strong similarities observed by FTIR and H-NMR spectroscopy. The glucan and xylan hydrolysis yields obtained from recycled IL exhibited a slight decrease in pretreatment efficiency (less than 10% in terms of hydrolysis yields compared to that of fresh IL), and a decrease in cellulose crystallinity was observed.

CONCLUSIONS

Our results demonstrated that mixing ILs such as [CCIm][OAc] and [CCIm][OAc] and blending the paper fraction of MSW with agricultural residues, such as AGB, may contribute to lower the production costs while maintaining high sugar yields. Recycled IL-water mixtures provided comparable results to that of fresh ILs. Both of these results offer the potential of reducing the production costs of sugars and biofuels at biorefineries as compared to more conventional IL conversion technologies.Graphical abstractSchematic of ionic liquid (IL) pretreatment of agave bagasse (AB) and paper-rich fraction of municipal solid waste (MSW).

摘要

背景

预处理对于降低生物质顽固性并提高生物燃料生产中酶促糖化效率是必要的。离子液体(IL)预处理作为一种可降低纤维素结晶度并去除木质素(影响酶可及性的关键因素)的预处理工艺,已引起广泛关注。离子液体预处理要实现商业化还需解决几个挑战,包括离子液体成本和可回收性。此外,尚不清楚在利用低成本、低质量的生物质原料(如城市固体废物(MSW)的纸张部分,其大量可得)时,离子液体能否维持工艺性能。一种可能降低离子液体成本的方法是在水性混合物中使用不同浓度的离子液体混合物。在此,我们描述了14种由1 - 乙基 - 3 - 乙基咪唑醋酸盐([CCIm][OAc])、1 - 丁基 - 3 - 乙基咪唑醋酸盐([CCIm][OAc])与水组成的体系,用于预处理与龙舌兰渣(AGB)混合的城市固体废物。研究了预处理生物质糖产率和离子液体稳定性方面的离子液体回收详细分析。

结果

两种生物质类型(AGB和MSW)均通过离子液体预处理得到有效破坏。当与超过40%的水混合时,[CCIm][OAc]和[CCIm][OAc]的预处理效率降低。AGB/MSW(1:1)混合物在水含量约为10%和40%的离子液体体系中,葡聚糖转化率分别为94.1%和83.0%。通过傅里叶变换红外光谱(FTIR)和氢核磁共振光谱(H - NMR)观察到新鲜离子液体和回收离子液体的化学结构有很强的相似性。回收离子液体得到的葡聚糖和木聚糖水解产率在预处理效率上略有下降(与新鲜离子液体相比,水解产率下降不到10%),且观察到纤维素结晶度降低。

结论

我们的结果表明,混合[CCIm][OAc]和[CCIm][OAc]等离子液体,并将城市固体废物的纸张部分与农业残渣(如AGB)混合,可以在保持高糖产率的同时降低生产成本。回收的离子液体 - 水混合物与新鲜离子液体效果相当。与更传统的离子液体转化技术相比,这两个结果都为降低生物精炼厂中糖和生物燃料的生产成本提供了潜力。

图形摘要

龙舌兰渣(AB)和城市固体废物富含纸张部分(MSW)的离子液体(IL)预处理示意图

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4835/5361851/6e24279d5fcb/13068_2017_758_Figa_HTML.jpg

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