Recent updates on different methods of pretreatment of lignocellulosic feedstocks: a review

被引:878
作者
Kumar A.K. [1 ]
Sharma S. [1 ]
机构
[1] Bioconversion Technology Division, Sardar Patel Renewable Energy Research Institute, Vallabh Vidyanagar, Anand, 388 120, Gujarat
关键词
Cellulose; Lignin; Lignocellulosic biomass; Pretreatment; Reducing sugars;
D O I
10.1186/s40643-017-0137-9
中图分类号
学科分类号
摘要
Lignocellulosic feedstock materials are the most abundant renewable bioresource material available on earth. It is primarily composed of cellulose, hemicellulose, and lignin, which are strongly associated with each other. Pretreatment processes are mainly involved in effective separation of these complex interlinked fractions and increase the accessibility of each individual component, thereby becoming an essential step in a broad range of applications particularly for biomass valorization. However, a major hurdle is the removal of sturdy and rugged lignin component which is highly resistant to solubilization and is also a major inhibitor for hydrolysis of cellulose and hemicellulose. Moreover, other factors such as lignin content, crystalline, and rigid nature of cellulose, production of post-pretreatment inhibitory products and size of feed stock particle limit the digestibility of lignocellulosic biomass. This has led to extensive research in the development of various pretreatment processes. The major pretreatment methods include physical, chemical, and biological approaches. The selection of pretreatment process depends exclusively on the application. As compared to the conventional single pretreatment process, integrated processes combining two or more pretreatment techniques is beneficial in reducing the number of process operational steps besides minimizing the production of undesirable inhibitors. However, an extensive research is still required for the development of new and more efficient pretreatment processes for lignocellulosic feedstocks yielding promising results. © 2017, The Author(s).
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[111]  
Romero A., Alonso A., Sastre A., Marquez A.N., Conversion of biomass into sorbitol: cellulose hydrolysis on MCM-48 and d-Glucose hydrogenation on Ru/MCM-48, Micropor Mesopor Mat, 224, pp. 1-8, (2016)
[112]  
Saha B.C., Cotta M.A., Enzymatic saccharification and fermentation of alkaline peroxide pretreated rice hulls to ethanol, Enzyme Microb Technol, 41, pp. 528-532, (2007)
[113]  
Saha B.C., Iten B.L., Cotta M., Wu Y.V., Dilute acid pretreatment, enzymatic saccharification, and fermentation of rice hulls to ethanol, Biotechnol Prog, 21, pp. 3816-3822, (2005)
[114]  
Salerno M.B., Lee H.S., Parameswaran P., Rittmann B.E., Using a pulsed electric field as a pretreatment for improved biosolids digestion and methanogenesis, Water Environment Federation WEFTEC, pp. 2005-2018, (2009)
[115]  
Sanchez C., Lignocellulosic residues: biodegradation and bioconversion by fungi, Biotechnol Adv, 27, pp. 185-194, (2009)
[116]  
Sant' Ana daSilva A., Inoue H., Endo T., Yano S., Bon E.P.S., Milling pretreatment of sugarcane bagasse and straw for enzymatic hydrolysis and ethanol fermentation, Biores Technol, 101, pp. 7402-7409, (2010)
[117]  
Sarkar N., Ghosh S.K., Bannerjee S., Aikat K., Bioethanol production from agricultural wastes: an overview, Renew Energy, 37, pp. 19-27, (2012)
[118]  
Sassner P., Martensson C.G., Galbe M., Zacchi G., Steam pretreatment of H<sub>2</sub>SO<sub>4</sub> impregnated salix for the production of bioethanol, Biores Technol, 99, pp. 137-145, (2008)
[119]  
Sawada T., Nakmura Y., Kobayashi F., Kuwahara M., Watanabe T., Effects of fungal pretreatment and steam explosion pretreatment on enzymatic saccharification of plant biomass, Biotechnol Bioeng, 48, pp. 719-724, (1995)
[120]  
Shafizadeh F., Bradbury A.G.W., Thermal degradation of cellulose in air and nitrogen at low temperatures, J Appl Poly Sci, 23, pp. 1431-1442, (1979)