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Fractionation of corn stover by two-step pretreatment for production of ethanol, furfural, and lignin

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  • Li, Wen-Chao
  • Zhang, Sen-Jia
  • Xu, Tao
  • Sun, Mei-Qing
  • Zhu, Jia-Qing
  • Zhong, Cheng
  • Li, Bing-Zhi
  • Yuan, Ying-Jin

Abstract

The comprehensive utilization of lignocellulose is great importance for improving the economic feasibility of biomass refining industry. Here, we established a two-step pretreatment process for fractionation and production of multiple products (furfural, ethanol, and lignin) from corn stover (CS). In the first step, H2SO4 pretreatment was used to remove hemicellulose and the effect of solid/liquid ratio (SLR) was investigated. The hemicellulose containing washing liquor was treated for furfural production without any additional catalyst and the maximum furfural yield (46.5%) was obtained at 210 °C for 20 min. It was found that the physical barrier of lignin was its mainly inhibition mechanism that limited the enzymatic digestibility of H2SO4 pretreated solid. The following NaOH pretreatment removed 90.8% of lignin and resulted in excellent glucan enzymatic conversion (98.6%). A large amount of acid insoluble lignin (AIL, 17.0 g/100 g CS), p-coumaric acid (1416.9 mg/100 g CS) and ferulic acid (249.4 mg/100 g CS) were observed in NaOH pretreatment liquor. The two-step pretreated CS produced up to 115.3 g/L of ethanol during simultaneous saccharification and fermentation (SSF) at 25% (w/w) solid loading. These results demonstrated that the successive H2SO4 and NaOH pretreatment was an efficient method for fractionation and integrative utilization of CS.

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  • Li, Wen-Chao & Zhang, Sen-Jia & Xu, Tao & Sun, Mei-Qing & Zhu, Jia-Qing & Zhong, Cheng & Li, Bing-Zhi & Yuan, Ying-Jin, 2020. "Fractionation of corn stover by two-step pretreatment for production of ethanol, furfural, and lignin," Energy, Elsevier, vol. 195(C).
  • Handle: RePEc:eee:energy:v:195:y:2020:i:c:s0360544220301833
    DOI: 10.1016/j.energy.2020.117076
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    1. Byun, Jaewon & Han, Jeehoon, 2019. "Catalytic conversion of corn stover for 〈gamma〉-valerolactone production by two different solvent strategies: Techno-economic assessment," Energy, Elsevier, vol. 175(C), pages 546-553.
    2. Li, Wen-Chao & Li, Xia & Zhu, Jia-Qing & Qin, Lei & Li, Bing-Zhi & Yuan, Ying-Jin, 2018. "Improving xylose utilization and ethanol production from dry dilute acid pretreated corn stover by two-step and fed-batch fermentation," Energy, Elsevier, vol. 157(C), pages 877-885.
    3. Barakat, Abdellatif & Chuetor, Santi & Monlau, Florian & Solhy, Abderrahim & Rouau, Xavier, 2014. "Eco-friendly dry chemo-mechanical pretreatments of lignocellulosic biomass: Impact on energy and yield of the enzymatic hydrolysis," Applied Energy, Elsevier, vol. 113(C), pages 97-105.
    4. Molaverdi, Maryam & Karimi, Keikhosro & Mirmohamadsadeghi, Safoora, 2019. "Improvement of dry simultaneous saccharification and fermentation of rice straw to high concentration ethanol by sodium carbonate pretreatment," Energy, Elsevier, vol. 167(C), pages 654-660.
    5. Pan, Shu-Yuan & Lin, Yupo J. & Snyder, Seth W. & Ma, Hwong-Wen & Chiang, Pen-Chi, 2016. "Assessing the environmental impacts and water consumption of pretreatment and conditioning processes of corn stover hydrolysate liquor in biorefineries," Energy, Elsevier, vol. 116(P1), pages 436-444.
    6. Bhutto, Abdul Waheed & Qureshi, Khadija & Harijan, Khanji & Abro, Rashid & Abbas, Tauqeer & Bazmi, Aqeel Ahmed & Karim, Sadia & Yu, Guangren, 2017. "Insight into progress in pre-treatment of lignocellulosic biomass," Energy, Elsevier, vol. 122(C), pages 724-745.
    7. Cardona, Eliana & Llano, Biviana & Peñuela, Mariana & Peña, Juan & Rios, Luis Alberto, 2018. "Liquid-hot-water pretreatment of palm-oil residues for ethanol production: An economic approach to the selection of the processing conditions," Energy, Elsevier, vol. 160(C), pages 441-451.
    8. Ryu, Hae Won & Lee, Hyung Won & Jae, Jungho & Park, Young-Kwon, 2019. "Catalytic pyrolysis of lignin for the production of aromatic hydrocarbons: Effect of magnesium oxide catalyst," Energy, Elsevier, vol. 179(C), pages 669-675.
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    2. Chong, Ting Yen & Cheah, Siang Aun & Ong, Chin Tye & Wong, Lee Yi & Goh, Chern Rui & Tan, Inn Shi & Foo, Henry Chee Yew & Lam, Man Kee & Lim, Steven, 2020. "Techno-economic evaluation of third-generation bioethanol production utilizing the macroalgae waste: A case study in Malaysia," Energy, Elsevier, vol. 210(C).
    3. So-Yeon Jeong & Jae-Won Lee, 2021. "Effects of Sugars and Degradation Products Derived from Lignocellulosic Biomass on Maleic Acid Production," Energies, MDPI, vol. 14(4), pages 1-11, February.
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    5. Singh, Neeraj Kumar & Singh, Rajesh, 2022. "Co-factors applicability in hydrogen production from rice straw hydrolysate in a bioelectrochemical system," Energy, Elsevier, vol. 255(C).

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