Bhutto AW, Qureshi K, Harijan K, Abro R, Abbas T, Bazmi AA, Karim S, Yu G (2017) Insight into
progress in pre-treatment of lignocellulosic biomass. Energy 122:724–745
Bitra VS, Womac AR, Igathinathane C, Miu PI, Yang YT, Smith DR, Chevanan N, Sokhansanj S
(2009) Direct measures of mechanical energy for knife mill size reduction of switchgrass, wheat
straw, and corn stover. Bioresour Technol 100(24):6578–6585
Blanch HW, Simmons BA, Klein-Marcuschamer D (2011) Biomass deconstruction to sugars.
Biotechnol J 6(9):1086–1102
Boussaid A-L, Esteghlalian AR, Gregg DJ, Lee KH, Saddler JN (2000) Twenty-first symposium on
biotechnology for fuels and chemicals. Humana Press, Totowa
Brandt BA, Jansen T, Görgens JF, van Zyl WH (2019) Overcoming lignocellulose-derived microbial inhibitors: advancing the Saccharomyces cerevisiae resistance toolbox. Biofuels Bioprod
Biorefin 13(6):1520–1536
Cannella D, Sveding PV, Jørgensen H (2014) PEI detoxification of pretreated spruce for high solids
ethanol fermentation. Appl Energy 132:394–403
Cao X, Peng X, Sun S, Zhong L, Sun R (2014a) Hydrothermal conversion of bamboo: Identification
and distribution of the components in solid residue, water-soluble and acetone-soluble fractions.
J Agric Food Chem 62(51):12360–12365
Cao X, Peng X, Sun S, Zhong L, Wang S, Lu F, Sun R (2014b) Impact of regeneration process on
the crystalline structure and enzymatic hydrolysis of cellulose obtained from ionic liquid.
Carbohydr Polym 111:400–403
Cao G, Ximenes E, Nichols NN, Frazer SE, Kim D, Cotta MA, Ladisch M (2015) Bioabatement
with hemicellulase supplementation to reduce enzymatic hydrolysis inhibitors. Bioresour
Technol 190:412–415
Chandel A, Da Silva SS (2013) Sustainable degradation of lignocellulosic biomass: techniques,
applications and commercialization. InTech, Rijeka
Chandel AK, Gonçalves BC, Strap JL, da Silva SS (2015) Biodelignification of lignocellulose
substrates: An intrinsic and sustainable pretreatment strategy for clean energy production. Crit
Rev Biotechnol 35(3):281–293
Chandra RP, Arantes V, Saddler J (2015) Steam pretreatment of agricultural residues facilitates
hemicellulose recovery while enhancing enzyme accessibility to cellulose. Bioresour Technol
185:302–307
Chen H, Han Y, Xu J (2008) Simultaneous saccharification and fermentation of steam exploded
wheat straw pretreated with alkaline peroxide. Process Biochem 43(12):1462–1466
Chen H, Liu J, Chang X, Chen D, Xue Y, Liu P, Lin H, Han S (2017) A review on the pretreatment
of lignocellulose for high-value chemicals. Fuel Process Technol 160:196–206
Cheng JJ, Timilsina GR (2011) Status and barriers of advanced biofuel technologies: a review.
Renew Energy 36(12):3541–3549
Cheng K-K, Cai B-Y, Zhang J-A, Ling H-Z, Zhou Y-J, Ge J-P, Xu J-M (2008) Sugarcane bagasse
hemicellulose hydrolysate for ethanol production by acid recovery process. Biochem Eng J 38
(1):105–109
Cherubini F (2010) The biorefinery concept: using biomass instead of oil for producing energy and
chemicals. Energ Conver Manage 51(7):1412–1421
Chundawat SP, Pal RK, Zhao C, Campbell T, Teymouri F, Videto J, Nielson C, Wieferich B,
Sousa L, Dale BE (2020) Ammonia fiber expansion (AFEX) pretreatment of lignocellulosic
biomass. J Vis Exp 18:158
Ciesielski PN, Resch MG, Hewetson B, Killgore JP, Curtin A, Anderson N, Chiaramonti AN,
Hurley DC, Sanders A, Himmel ME (2014) Engineering plant cell walls: tuning lignin monomer
composition for deconstructable biofuel feedstocks or resilient biomaterials. Green Chem 16
(5):2627–2635
Cola P, Procópio DP, de Castro Alves AT, Carnevalli LR, Sampaio IV, da Costa BLV, Basso TO
(2020) Differential effects of major inhibitory compounds from sugarcane-based lignocellulosic
hydrolysates on the physiology of yeast strains and lactic acid bacteria. Biotechnol Lett 42
(4):571–582
5 Challenges in Bioethanol Production: Effect of Inhibitory Compounds
147
progress in pre-treatment of lignocellulosic biomass. Energy 122:724–745
Bitra VS, Womac AR, Igathinathane C, Miu PI, Yang YT, Smith DR, Chevanan N, Sokhansanj S
(2009) Direct measures of mechanical energy for knife mill size reduction of switchgrass, wheat
straw, and corn stover. Bioresour Technol 100(24):6578–6585
Blanch HW, Simmons BA, Klein-Marcuschamer D (2011) Biomass deconstruction to sugars.
Biotechnol J 6(9):1086–1102
Boussaid A-L, Esteghlalian AR, Gregg DJ, Lee KH, Saddler JN (2000) Twenty-first symposium on
biotechnology for fuels and chemicals. Humana Press, Totowa
Brandt BA, Jansen T, Görgens JF, van Zyl WH (2019) Overcoming lignocellulose-derived microbial inhibitors: advancing the Saccharomyces cerevisiae resistance toolbox. Biofuels Bioprod
Biorefin 13(6):1520–1536
Cannella D, Sveding PV, Jørgensen H (2014) PEI detoxification of pretreated spruce for high solids
ethanol fermentation. Appl Energy 132:394–403
Cao X, Peng X, Sun S, Zhong L, Sun R (2014a) Hydrothermal conversion of bamboo: Identification
and distribution of the components in solid residue, water-soluble and acetone-soluble fractions.
J Agric Food Chem 62(51):12360–12365
Cao X, Peng X, Sun S, Zhong L, Wang S, Lu F, Sun R (2014b) Impact of regeneration process on
the crystalline structure and enzymatic hydrolysis of cellulose obtained from ionic liquid.
Carbohydr Polym 111:400–403
Cao G, Ximenes E, Nichols NN, Frazer SE, Kim D, Cotta MA, Ladisch M (2015) Bioabatement
with hemicellulase supplementation to reduce enzymatic hydrolysis inhibitors. Bioresour
Technol 190:412–415
Chandel A, Da Silva SS (2013) Sustainable degradation of lignocellulosic biomass: techniques,
applications and commercialization. InTech, Rijeka
Chandel AK, Gonçalves BC, Strap JL, da Silva SS (2015) Biodelignification of lignocellulose
substrates: An intrinsic and sustainable pretreatment strategy for clean energy production. Crit
Rev Biotechnol 35(3):281–293
Chandra RP, Arantes V, Saddler J (2015) Steam pretreatment of agricultural residues facilitates
hemicellulose recovery while enhancing enzyme accessibility to cellulose. Bioresour Technol
185:302–307
Chen H, Han Y, Xu J (2008) Simultaneous saccharification and fermentation of steam exploded
wheat straw pretreated with alkaline peroxide. Process Biochem 43(12):1462–1466
Chen H, Liu J, Chang X, Chen D, Xue Y, Liu P, Lin H, Han S (2017) A review on the pretreatment
of lignocellulose for high-value chemicals. Fuel Process Technol 160:196–206
Cheng JJ, Timilsina GR (2011) Status and barriers of advanced biofuel technologies: a review.
Renew Energy 36(12):3541–3549
Cheng K-K, Cai B-Y, Zhang J-A, Ling H-Z, Zhou Y-J, Ge J-P, Xu J-M (2008) Sugarcane bagasse
hemicellulose hydrolysate for ethanol production by acid recovery process. Biochem Eng J 38
(1):105–109
Cherubini F (2010) The biorefinery concept: using biomass instead of oil for producing energy and
chemicals. Energ Conver Manage 51(7):1412–1421
Chundawat SP, Pal RK, Zhao C, Campbell T, Teymouri F, Videto J, Nielson C, Wieferich B,
Sousa L, Dale BE (2020) Ammonia fiber expansion (AFEX) pretreatment of lignocellulosic
biomass. J Vis Exp 18:158
Ciesielski PN, Resch MG, Hewetson B, Killgore JP, Curtin A, Anderson N, Chiaramonti AN,
Hurley DC, Sanders A, Himmel ME (2014) Engineering plant cell walls: tuning lignin monomer
composition for deconstructable biofuel feedstocks or resilient biomaterials. Green Chem 16
(5):2627–2635
Cola P, Procópio DP, de Castro Alves AT, Carnevalli LR, Sampaio IV, da Costa BLV, Basso TO
(2020) Differential effects of major inhibitory compounds from sugarcane-based lignocellulosic
hydrolysates on the physiology of yeast strains and lactic acid bacteria. Biotechnol Lett 42
(4):571–582
5 Challenges in Bioethanol Production: Effect of Inhibitory Compounds
147
