Biobutanol production from apple pomace: the importance of pretreatment methods on the fermentability of lignocellulosic agro-food wastes

被引:0
作者
María Hijosa-Valsero
Ana I. Paniagua-García
Rebeca Díez-Antolínez
机构
[1] Instituto Tecnológico Agrario de Castilla y León (ITACyL),Centro de Biocombustibles y Bioproductos
[2] Universidad de León,Instituto de Recursos Naturales (IRENA)
来源
Applied Microbiology and Biotechnology | 2017年 / 101卷
关键词
Apple pomace; Lignocellulosic wastes; Pretreatment; ABE fermentation; Biorefinery; DSC;
D O I
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学科分类号
摘要
Apple pomace was studied as a possible raw material for biobutanol production. Five different soft physicochemical pretreatments (autohydrolysis, acids, alkalis, organic solvents and surfactants) were compared in a high-pressure reactor, whose working parameters (temperature, time and reagent concentration) were optimised to maximise the amount of simple sugars released and to minimise inhibitor generation. The pretreated biomass was subsequently subjected to a conventional enzymatic treatment to complete the hydrolysis. A thermal analysis (DSC) of the solid biomass indicated that lignin was mainly degraded during the enzymatic treatment. The hydrolysate obtained with the surfactant polyethylene glycol 6000 (PEG 6000) (1.96% w/w) contained less inhibitors than any other pretreatment, yet providing 42 g/L sugars at relatively mild conditions (100 °C, 5 min), and was readily fermented by Clostridium beijerinckii CECT 508 in 96 h (3.55 g/L acetone, 9.11 g/L butanol, 0.26 g/L ethanol; 0.276 gB/gS yield; 91% sugar consumption). Therefore, it is possible to optimise pretreatment conditions of lignocellulosic apple pomace to reduce inhibitor concentrations in the final hydrolysate and perform successful ABE fermentations without the need of a detoxification stage.
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页码:8041 / 8052
页数:11
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  • [1] Amiri H(2015)Autohydrolysis: a promising pretreatment for the improvement of acetone, butanol, and ethanol production from woody materials Chem Eng Sci 137 722-729
  • [2] Karimi K(2008)Evaluation of organosolv pretreatment for the conversion of Enzyme Microb Tech 43 214-219
  • [3] Araque E(2014) D. Don to ethanol Ind Crop Prod 54 32-39
  • [4] Parra C(2009)Optimization of corn stover biorefinery for coproduction of oligomersand second generation bioethanol using non-isothermalautohydrolysis Appl Microbiol Biot 83 1035-1043
  • [5] Freer J(2013)Detoxification of model phenolic compounds in lignocellulosic hydrolysates with peroxidase for butanol production from Renew Sust Energ Rev 27 789-805
  • [6] Contreras D(2006)Perspective of apple processing wastes as low-cost substrates for bioproduction of high value products: a review Biomass Bioenergy 30 880-891
  • [7] Rodríguez J(2016)Chemical composition and response to dilute-acid pretreatment and enzymatic saccharification of alfalfa, reed canarygrass, and switchgrass Chem Engineer Trans 49 217-222
  • [8] Mendonça R(2007)Effect of nutrient supplementation on biobutanol production from cheese whey by ABE (acetone–butanol–ethanol) fermentation Biotechnol Bioeng 97 1460-1469
  • [9] Baeza J(1912)Butanol production from agricultural residues: impact of degradation products on J Biol Chem 12 239-243
  • [10] Buruiana C-T(2014) growth and butanol fermentation Biomass Bioenergy 66 110-115