Salak Asghari F, Yoshida H (2006) Acid-catalyzed production of 5-hydroxymethyl furfural from
D-fructose in subcritical water. Ind Eng Chem Res 45(7):2163–2173
Sales FG, Maranhão LC, Lima Filho NM, Abreu CA (2006) Kinetic evaluation and modeling of
lignin catalytic wet oxidation to selective production of aromatic aldehydes. Ind Eng Chem Res
45(20):6627–6631. https://doi.org/10.1021/ie0601697
Schutyser W, Van den Bossche G, Raaffels A, Van den Bosch S, Koelewijn SF, Renders T, Sels BF
(2016) Selective conversion of lignin-derivable 4-alkylguaiacols to 4-alkylcyclohexanols over
noble and non-noble-metal catalysts. ACS Sustain Chem Eng 4(10):5336–5346. https://doi.org/
10.1021/acssuschemeng.6b01580
Sharma B, Ingalls RG, Jones CL, Khanchi A (2013) Biomass supply chain design and analysis:
basis, overview, modeling, challenges, and future. Renew Sust Energ Rev 24:608–627
Sharma HK, Xu C, Qin W (2019) Biological pretreatment of lignocellulosic biomass for biofuels
and bioproducts: an overview. Waste Biomass Valoriz 10(2):235–251
Shu R, Xu Y, Ma L, Zhang Q, Wang C, Chen Y (2018) Controllable production of guaiacols and
phenols from lignin depolymerization using Pd/C catalyst cooperated with metal chloride.
Chem Eng J 338:457–464. https://doi.org/10.1016/j.cej.2018.01.002
Soimakallio S, Koponen K (2011) How to ensure greenhouse gas emission reductions by increasing
the use of biofuels: suitability of the European Union sustainability criteria. Biomass Bioenergy
35(8):3504–3513
Sreenath HK, Moldes AB, Koegel RG, Straub RJ (2001) Lactic acid production by simultaneous
saccharification and fermentation of alfalfa fiber. J Biosci Bioeng 92(6):518–523
Srivastava N, Mishra K, Srivastava M, Srivastava KR, Gupta VK, Ramteke PW, Mishra PK (2019)
Role of compositional analysis of lignocellulosic biomass for efficient biofuel production. In:
New and future developments in microbial biotechnology and bioengineering. Elsevier,
Amsterdam, pp 29–43
Sun Y, Cheng J (2002) Hydrolysis of lignocellulosic materials for ethanol production: a review.
Bioresour Technol 83(1):1–11
Tanaka T, Hoshina M, Tanabe S, Sakai K, Ohtsubo S, Taniguchi M (2006) Production of D-lactic
acid from defatted rice bran by simultaneous saccharification and fermentation. Bioresour
Technol 97(2):211–217
Toledano A, Serrano L, Pineda A, Romero AA, Luque R, Labidi J (2014) Microwave-assisted
depolymerisation of organosolv lignin via mild hydrogen-free hydrogenolysis: catalyst screening. Appl Catal B Environ 145:43–55. https://doi.org/10.1016/j.apcatb.2012.10.015
Tripathi N, Hills CD, Singh RS, Atkinson CJ (2019) Biomass waste utilisation in low-carbon
products: harnessing a major potential resource. npj Clim Atmos Sci 2:35. https://doi.org/10.
1038/s41612-019-0093-5
Tumwesige V, Fulford D, Davidson GC (2014) Biogas appliances in Sub-Saharan Africa. Biomass
Bioenergy 70:40–50
Vallejos ME, Chade M, Mereles EB, Bengoechea DI, Brizuela JG, Felissia FE, Area MC (2016)
Strategies of detoxification and fermentation for biotechnological production of xylitol from
sugarcane bagasse. Ind Crop Prod 91:161–169
Van de Vyver S, Geboers J, Dusselier M, Schepers H, Vosch T, Zhang L, Van Tendeloo G, Jacobs
PA, Sels BF (2010) Selective bifunctional catalytic conversion of cellulose over reshaped Ni
particles at the tip of carbon nanofibers. ChemSusChem 3(6):698–701
Vassilev N, Medina A, Eichler-Löbermann B, Flor-Peregrín E, Vassileva M (2012) Animal bone
char solubilization with itaconic acid produced by free and immobilized Aspergillus terreus
grown on glycerol-based medium. Appl Biochem Biotechnol 168(5):1311–1318
Victor A, Pulidindi IN, Gedanken A (2014) Levulinic acid production from Cicer arietinum, cotton,
Pinus radiata and sugarcane bagasse. RSC Adv 4(84):44706–44711
Voitl T, Rohr PRV (2009) Demonstration of a process for the conversion of kraft lignin into vanillin
and methyl vanillate by acidic oxidation in aqueous methanol. Ind Eng Chem Res 49
(2):520–525. https://doi.org/10.1021/ie901293p
128
D. Ramesh et al.
D-fructose in subcritical water. Ind Eng Chem Res 45(7):2163–2173
Sales FG, Maranhão LC, Lima Filho NM, Abreu CA (2006) Kinetic evaluation and modeling of
lignin catalytic wet oxidation to selective production of aromatic aldehydes. Ind Eng Chem Res
45(20):6627–6631. https://doi.org/10.1021/ie0601697
Schutyser W, Van den Bossche G, Raaffels A, Van den Bosch S, Koelewijn SF, Renders T, Sels BF
(2016) Selective conversion of lignin-derivable 4-alkylguaiacols to 4-alkylcyclohexanols over
noble and non-noble-metal catalysts. ACS Sustain Chem Eng 4(10):5336–5346. https://doi.org/
10.1021/acssuschemeng.6b01580
Sharma B, Ingalls RG, Jones CL, Khanchi A (2013) Biomass supply chain design and analysis:
basis, overview, modeling, challenges, and future. Renew Sust Energ Rev 24:608–627
Sharma HK, Xu C, Qin W (2019) Biological pretreatment of lignocellulosic biomass for biofuels
and bioproducts: an overview. Waste Biomass Valoriz 10(2):235–251
Shu R, Xu Y, Ma L, Zhang Q, Wang C, Chen Y (2018) Controllable production of guaiacols and
phenols from lignin depolymerization using Pd/C catalyst cooperated with metal chloride.
Chem Eng J 338:457–464. https://doi.org/10.1016/j.cej.2018.01.002
Soimakallio S, Koponen K (2011) How to ensure greenhouse gas emission reductions by increasing
the use of biofuels: suitability of the European Union sustainability criteria. Biomass Bioenergy
35(8):3504–3513
Sreenath HK, Moldes AB, Koegel RG, Straub RJ (2001) Lactic acid production by simultaneous
saccharification and fermentation of alfalfa fiber. J Biosci Bioeng 92(6):518–523
Srivastava N, Mishra K, Srivastava M, Srivastava KR, Gupta VK, Ramteke PW, Mishra PK (2019)
Role of compositional analysis of lignocellulosic biomass for efficient biofuel production. In:
New and future developments in microbial biotechnology and bioengineering. Elsevier,
Amsterdam, pp 29–43
Sun Y, Cheng J (2002) Hydrolysis of lignocellulosic materials for ethanol production: a review.
Bioresour Technol 83(1):1–11
Tanaka T, Hoshina M, Tanabe S, Sakai K, Ohtsubo S, Taniguchi M (2006) Production of D-lactic
acid from defatted rice bran by simultaneous saccharification and fermentation. Bioresour
Technol 97(2):211–217
Toledano A, Serrano L, Pineda A, Romero AA, Luque R, Labidi J (2014) Microwave-assisted
depolymerisation of organosolv lignin via mild hydrogen-free hydrogenolysis: catalyst screening. Appl Catal B Environ 145:43–55. https://doi.org/10.1016/j.apcatb.2012.10.015
Tripathi N, Hills CD, Singh RS, Atkinson CJ (2019) Biomass waste utilisation in low-carbon
products: harnessing a major potential resource. npj Clim Atmos Sci 2:35. https://doi.org/10.
1038/s41612-019-0093-5
Tumwesige V, Fulford D, Davidson GC (2014) Biogas appliances in Sub-Saharan Africa. Biomass
Bioenergy 70:40–50
Vallejos ME, Chade M, Mereles EB, Bengoechea DI, Brizuela JG, Felissia FE, Area MC (2016)
Strategies of detoxification and fermentation for biotechnological production of xylitol from
sugarcane bagasse. Ind Crop Prod 91:161–169
Van de Vyver S, Geboers J, Dusselier M, Schepers H, Vosch T, Zhang L, Van Tendeloo G, Jacobs
PA, Sels BF (2010) Selective bifunctional catalytic conversion of cellulose over reshaped Ni
particles at the tip of carbon nanofibers. ChemSusChem 3(6):698–701
Vassilev N, Medina A, Eichler-Löbermann B, Flor-Peregrín E, Vassileva M (2012) Animal bone
char solubilization with itaconic acid produced by free and immobilized Aspergillus terreus
grown on glycerol-based medium. Appl Biochem Biotechnol 168(5):1311–1318
Victor A, Pulidindi IN, Gedanken A (2014) Levulinic acid production from Cicer arietinum, cotton,
Pinus radiata and sugarcane bagasse. RSC Adv 4(84):44706–44711
Voitl T, Rohr PRV (2009) Demonstration of a process for the conversion of kraft lignin into vanillin
and methyl vanillate by acidic oxidation in aqueous methanol. Ind Eng Chem Res 49
(2):520–525. https://doi.org/10.1021/ie901293p
128
D. Ramesh et al.
