Girisuta B, Dussan K, Haverty D, Leahy JJ, Hayes MHB (2013) A kinetic study of acid catalysed
hydrolysis of sugar cane bagasse to levulinic acid. Chem Eng J 217:61–70
Givry S, Prevot V, Duchiron F (2008) Lactic acid production from hemicellulosic hydrolyzate by
cells of Lactobacillus bifermentans immobilized in Ca-alginate using response surface methodology. World J Microbiol Biotechnol 24(6):745–752
Güvenatam B, Kurşun O, Heeres EH, Pidko EA, Hensen EJ (2014) Hydrodeoxygenation of monoand dimeric lignin model compounds on noble metal catalysts. Catal Today 233:83–91. https://
doi.org/10.1016/j.cattod.2013.12.011
Hanson SK, Baker RT, Gordon JC, Scott BL, Thorn DL (2010) Aerobic oxidation of lignin models
using a base metal vanadium catalyst. Inorg Chem 49(12):5611–5618. https://doi.org/10.1021/
ic100528n
Harindintwali JD, Jianli Z, Yu XB (2020) Lignocellulosic crop residue composting by cellulolytic
nitrogen-fixing bacteria: a novel tool for environmental sustainability. Sci Total Environ
715:136912
Hassan SS, Williams GA, Jaiswal AK (2018) Emerging technologies for the pretreatment of
lignocellulosic biomass. Bioresour Technol 262:310–318
Hernández-Beltrán JU, Lira HD, Omar I, Cruz-Santos MM, Saucedo-Luevanos A, HernándezTerán F, Balagurusamy N (2019) Insight into pretreatment methods of lignocellulosic biomass
to increase biogas yield: current state, challenges, and opportunities. Appl Sci 9(18):3721
Hernández-Pérez AF, Costa IAL, Silva DDV, Dussán KJ, Villela TR, Canettieri EV, Carvalho JA
Jr, Neto TS, Felipe MGA (2016) Biochemical conversion of sugarcane straw hemicellulosic
hydrolyzate supplemented with co-substrates for xylitol production. Bioresour Technol
200:1085–1088
Hodge DB, Andersson C, Berglund KA, Rova U (2009) Detoxification requirements for bioconversion of softwood dilute acid hydrolyzates to succinic acid. Enzym Microb Technol 44
(5):309–316
Huang YF, Chiueh PT, Lo SL (2016) A review on microwave pyrolysis of lignocellulosic biomass.
Sustain Environ Res 26(3):103–109
Ibrahim AA, Lin A, Zhang F, AbouZeid KM, El-Shall MS (2017) Palladium nanoparticles
supported on a metal–organic framework-partially reduced graphene oxide hybrid for the
catalytic hydrodeoxygenation of vanillin as a model for biofuel upgrade reactions.
ChemCatChem 9(3):469–480. https://doi.org/10.1002/cctc.201600956
Ishikawa M, Tamura M, Nakagawa Y, Tomishige K (2016) Demethoxylation of guaiacol and
methoxybenzenes over carbon-supported Ru–Mn catalyst. Appl Catal B Environ 182:193–203.
https://doi.org/10.1016/j.apcatb.2015.09.021
Jahim JM, Muhammad NIS, Yeong WT (2006) Factor analysis in itaconic acid fermentation using
filtered POME by Aspergillus terreus IMI 282743. J Kejuruteraan 18:39–48
Jeong GT (2015) Catalytic conversion of Helianthus tuberosus L. to sugars,
5-hydroxymethylfurfural and levulinic acid using hydrothermal reaction. Biomass Bioenergy
74:113–121
Jiang T, Qiao H, Zheng Z, Chu Q, Li X, Yong Q, Ouyang J (2016) Lactic acid production from
pretreated hydrolysates of corn stover by a newly developed Bacillus coagulans strain. PLoS
One 11(2):e0149101
John RP, Nampoothiri KM, Pandey A (2006) Simultaneous saccharification and fermentation of
cassava bagasse for l-(+)-lactic acid production using Lactobacilli. Appl Biochem Biotechnol
134:263–272
Joshi N, Lawal A (2013) Hydrodeoxygenation of 4-propylguaiacol (2-methoxy-4-propylphenol) in
a microreactor: performance and kinetic studies. Ind Eng Chem Res 52(11):4049–4058. https://
doi.org/10.1021/ie400037y
Kamm B, Kamm M (2004) Principles of biorefineries. Appl Microbiol Biotechnol 64(2):137–145
Kang S, Fu J, Zhang G (2018) From lignocellulosic biomass to levulinic acid: a review on acidcatalyzed hydrolysis. Renew Sust Energ Rev 94:340–362
124
D. Ramesh et al.
hydrolysis of sugar cane bagasse to levulinic acid. Chem Eng J 217:61–70
Givry S, Prevot V, Duchiron F (2008) Lactic acid production from hemicellulosic hydrolyzate by
cells of Lactobacillus bifermentans immobilized in Ca-alginate using response surface methodology. World J Microbiol Biotechnol 24(6):745–752
Güvenatam B, Kurşun O, Heeres EH, Pidko EA, Hensen EJ (2014) Hydrodeoxygenation of monoand dimeric lignin model compounds on noble metal catalysts. Catal Today 233:83–91. https://
doi.org/10.1016/j.cattod.2013.12.011
Hanson SK, Baker RT, Gordon JC, Scott BL, Thorn DL (2010) Aerobic oxidation of lignin models
using a base metal vanadium catalyst. Inorg Chem 49(12):5611–5618. https://doi.org/10.1021/
ic100528n
Harindintwali JD, Jianli Z, Yu XB (2020) Lignocellulosic crop residue composting by cellulolytic
nitrogen-fixing bacteria: a novel tool for environmental sustainability. Sci Total Environ
715:136912
Hassan SS, Williams GA, Jaiswal AK (2018) Emerging technologies for the pretreatment of
lignocellulosic biomass. Bioresour Technol 262:310–318
Hernández-Beltrán JU, Lira HD, Omar I, Cruz-Santos MM, Saucedo-Luevanos A, HernándezTerán F, Balagurusamy N (2019) Insight into pretreatment methods of lignocellulosic biomass
to increase biogas yield: current state, challenges, and opportunities. Appl Sci 9(18):3721
Hernández-Pérez AF, Costa IAL, Silva DDV, Dussán KJ, Villela TR, Canettieri EV, Carvalho JA
Jr, Neto TS, Felipe MGA (2016) Biochemical conversion of sugarcane straw hemicellulosic
hydrolyzate supplemented with co-substrates for xylitol production. Bioresour Technol
200:1085–1088
Hodge DB, Andersson C, Berglund KA, Rova U (2009) Detoxification requirements for bioconversion of softwood dilute acid hydrolyzates to succinic acid. Enzym Microb Technol 44
(5):309–316
Huang YF, Chiueh PT, Lo SL (2016) A review on microwave pyrolysis of lignocellulosic biomass.
Sustain Environ Res 26(3):103–109
Ibrahim AA, Lin A, Zhang F, AbouZeid KM, El-Shall MS (2017) Palladium nanoparticles
supported on a metal–organic framework-partially reduced graphene oxide hybrid for the
catalytic hydrodeoxygenation of vanillin as a model for biofuel upgrade reactions.
ChemCatChem 9(3):469–480. https://doi.org/10.1002/cctc.201600956
Ishikawa M, Tamura M, Nakagawa Y, Tomishige K (2016) Demethoxylation of guaiacol and
methoxybenzenes over carbon-supported Ru–Mn catalyst. Appl Catal B Environ 182:193–203.
https://doi.org/10.1016/j.apcatb.2015.09.021
Jahim JM, Muhammad NIS, Yeong WT (2006) Factor analysis in itaconic acid fermentation using
filtered POME by Aspergillus terreus IMI 282743. J Kejuruteraan 18:39–48
Jeong GT (2015) Catalytic conversion of Helianthus tuberosus L. to sugars,
5-hydroxymethylfurfural and levulinic acid using hydrothermal reaction. Biomass Bioenergy
74:113–121
Jiang T, Qiao H, Zheng Z, Chu Q, Li X, Yong Q, Ouyang J (2016) Lactic acid production from
pretreated hydrolysates of corn stover by a newly developed Bacillus coagulans strain. PLoS
One 11(2):e0149101
John RP, Nampoothiri KM, Pandey A (2006) Simultaneous saccharification and fermentation of
cassava bagasse for l-(+)-lactic acid production using Lactobacilli. Appl Biochem Biotechnol
134:263–272
Joshi N, Lawal A (2013) Hydrodeoxygenation of 4-propylguaiacol (2-methoxy-4-propylphenol) in
a microreactor: performance and kinetic studies. Ind Eng Chem Res 52(11):4049–4058. https://
doi.org/10.1021/ie400037y
Kamm B, Kamm M (2004) Principles of biorefineries. Appl Microbiol Biotechnol 64(2):137–145
Kang S, Fu J, Zhang G (2018) From lignocellulosic biomass to levulinic acid: a review on acidcatalyzed hydrolysis. Renew Sust Energ Rev 94:340–362
124
D. Ramesh et al.
