Journal of Radiation Research and Radiation Processing, Volume. 41, Issue 6, 060401(2023)
Degradation products analysis of rapeseed straw pretreated with 60Co-γ-ray irradiation and its effect on enzymatic hydrolysis and fermentation
[1] PEI Yanjie. Analysis of cell wall composition, biomass digestibility and bioethanol conversion in rapeseed straw[D], 75(2016).
[2] ZHANG Chunyan. Studies on the effect of sugar production and mechanism of hydrolysis of irradiation pretreated rapeseed straw[D], 134(2015).
[3] Chen H Y, Liu J B, Chang X et al. A review on the pretreatment of lignocellulose for high-value chemicals[J]. Fuel Processing Technology, 160, 196-206(2017).
[4] Bala A J, Singh B. Development of an environmental-benign process for efficient pretreatment and saccharification of Saccharum biomasses for bioethanol production[J]. Renewable Energy, 130, 12-24(2019).
[5] Rastogi M, Shrivastava S. Recent advances in second generation bioethanol production: an insight to pretreatment, saccharification and fermentation processes[J]. Renewable and Sustainable Energy Reviews, 80, 330-340(2017).
[6] Kuglarz M, Alvarado-Morales M, Dąbkowska K et al. Integrated production of cellulosic bioethanol and succinic acid from rapeseed straw after dilute-acid pretreatment[J]. Bioresource Technology, 265, 191-199(2018).
[7] Tsegaye B, Balomajumder C, Roy P. Optimization of microwave and NaOH pretreatments of wheat straw for enhancing biofuel yield[J]. Energy Conversion and Management, 186, 82-92(2019).
[8] Prasad R K, Chatterjee S, Mazumder P B et al. Bioethanol production from waste lignocelluloses: a review on microbial degradation potential[J]. Chemosphere, 231, 588-606(2019).
[9] Trinh L T P, Lee Y J, Park C S et al. Aqueous acidified ionic liquid pretreatment for bioethanol production and concentration of produced ethanol by pervaporation[J]. Journal of Industrial and Engineering Chemistry, 69, 57-65(2019).
[10] Chen J P, Wang L Y, Su X J et al. Structure, morphology, thermostability and irradiation-mediated degradation fractions of hemicellulose treated with γ-irradiation[J]. Waste and Biomass Valorization, 7, 1415-1425(2016).
[11] CHEN Liang, SU Xiaojun, CHEN Jingping et al. Enzymatic hydrolysis of rice straw pretreated by irradiation at high solid loading[J]. Chemistry and Industry of Forest Products, 35, 129-134(2015).
[12] Liu Y, Guo L J, Wang L Y et al. Irradiation pretreatment facilitates the achievement of high total sugars concentration from lignocellulose biomass[J]. Bioresource Technology, 232, 270-277(2017).
[13] Zhang C Y, Su X J, Xiong X Y et al. 60Co-γ radiation-induced changes in the physical and chemical properties of rapeseed straw[J]. Biomass and Bioenergy, 85, 207-214(2016).
[14] YANG Li, TAN Liping, LIU Tongjun. Progress in detoxification of inhibitors generated during lignocellulose pretreatment[J]. Chinese Journal of Biotechnology, 37, 15-29(2021).
[15] Li Q M, Li X J, Jiang Y L et al. Analysis of degradation products and structural characterization of giant reed and Chinese silvergrass pretreated by 60Co-γ irradiation[J]. Industrial Crops and Products, 83, 307-315(2016).
[16] ZHANG Chunyan, TAN Xinghe, XIONG Xingyao et al. Analysis of degradation products of rapeseed straw irradiated with 60Co-γ[J]. Journal of Hunan Agricultural University (Natural Sciences), 43, 92-97(2017).
[17] Liu Y, Zhou H, Wang L Y et al. Improving Saccharomyces cerevisiae growth against lignocellulose-derived inhibitors as well as maximizing ethanol production by a combination proposal of γ-irradiation pretreatment with in situ detoxification[J]. Chemical Engineering Journal, 287, 302-312(2016).
[18] WU Xiaofen, LEI Shuting, CHU Yi et al. Effects of 5-MeV electron accelerator irradiation on cycling separation of lignocellulose from Triarrhena lutarioriparia by formic acid[J]. Journal of Radiation Research and Radiation Processing, 40, 020402(2022).
[19] Chen S F, Mowery R A, Castleberry V A et al. High-performance liquid chromatography method for simultaneous determination of aliphatic acid, aromatic acid and neutral degradation products in biomass pretreatment hydrolysates[J]. Journal of Chromatography A, 1104, 54-61(2006).
[20] WU Xiaofen, CHEN Liang, QI Hui et al. Separation process of cellulose, lignin and xylose from camellia oleifera shell by irradiation and formic acid[J]. Journal of Nuclear Agricultural Sciences, 34, 1975-1982(2020).
[21] Wu X F, Chen L, He W Q et al. Characterize the physicochemical structure and enzymatic efficiency of agricultural residues exposed to γ-irradiation pretreatment[J]. Industrial Crops and Products, 150, 112228(2020).
[22] CHEN Liang, WU Xiaofen, CHEN Jingping et al. Study on the degradation of microcrystalline cellulose irradiated by γ rays[J]. Journal of Nuclear Agricultural Sciences, 30, 1731-1737(2016).
[23] WU Xiaofen, CHEN Liang, CHEN Jingping et al. Study on the degradation mechanism of xylose by gamma rays irradiation[J]. Journal of Nuclear Agricultural Sciences, 31, 889-898(2017).
[24] Wu X F, Chen L, Chen J P et al. The effect of 60Co γ-irradiation on the structure and thermostability of alkaline lignin and its irradiation derived degradation products[J]. Waste and Biomass Valorization, 10, 3025-3035(2019).
[25] Zhang C Y, Su X J, Hu Q L et al. Effect of 60Co-γ irradiation on the microstructure and enzymatic hydrolysis of rapeseed straw[J]. Cellulose Chemistry and Technology, 50, 973-981(2016).
[26] Lee B M, Jeun J P, Kang P H. Enhanced enzymatic hydrolysis of kenaf core using irradiation and dilute acid[J]. Radiation Physics and Chemistry, 130, 216-220(2017).
[27] Su X J, Zhang C Y, Li W J et al. Radiation-induced structural changes of miscanthus biomass[J]. Applied Sciences, 10, 1130-1142(2020).
[28] Fei X H, Jia W B, Wang J Q et al. Study on enzymatic hydrolysis efficiency and physicochemical properties of cellulose and lignocellulose after pretreatment with electron beam irradiation[J]. International Journal of Biological Macromolecules, 145, 733-739(2020).
[29] Climent Barba F, Rodríguez-Jasso R M, R K Sukumaran et al. High-solids loading processing for an integrated lignocellulosic biorefinery: effects of transport phenomena and rheology―a review[J]. Bioresource Technology, 351, 127044(2022).
[30] Saravanakumar T, Park H S, Mo A Y et al. Detoxification of furanic and phenolic lignocellulose derived inhibitors of yeast using laccase immobilized on bacterial cellulosic nanofibers[J]. Journal of Molecular Catalysis B: Enzymatic, 134, 196-205(2016).
[31] ZHANG Yong, GUO Donghao, WANG Keqin et al. Fermentation for ethanol production with γ ray irradiation-pretreated corn straw[J]. China Brewing, 37, 58-61(2018).
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Ming DENG, Liang CHEN, Hui QI, An LIU, Yong ZHANG, Yiji ZHOU, Keqin WANG, Xiaofen WU. Degradation products analysis of rapeseed straw pretreated with 60Co-γ-ray irradiation and its effect on enzymatic hydrolysis and fermentation[J]. Journal of Radiation Research and Radiation Processing, 2023, 41(6): 060401
Category: Research Articles
Received: May. 5, 2023
Accepted: Jun. 11, 2023
Published Online: Jan. 3, 2024
The Author Email: Keqin WANG (武小芬), Xiaofen WU (王克勤)