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Razmovski R, Vučurović V (2012) Bioethanol production from sugar beet molasses and thick juice
using Saccharomyces cerevisiae immobilized on maize stem ground tissue. Fuel 92:1–8
Reina L, Botto E, Mantero C et al (2016) Production of second generation ethanol using Eucalyptus
dunnii bark residues and ionic liquid pretreatment. Biomass Bioenergy 93:116–121
Reyimu Z, Ízšimen D (2017) Batch cultivation of marine microalgae Nannochloropsis oculata and
Tetraselmis suecica in treated municipal wastewater toward bioethanol production. J Clean Prod
150:40–46
RFA (2015) Going Global 2015 Bioethanol Industry Outlook. Renew Fuel Assoc
Rizza LS, Smachetti MES, Do Nascimento M et al (2017) Bioprospecting for native microalgae as
an alternative source of sugars for the production of bioethanol. Algal Res 22:140–147
Robert D, Perlack LLW, Turhollow AF, et al (2005) Biomass as feedstock for a bioenergy and
bioproducts industry: the technical feasibility of a billion-ton annual supply. Oak Ridge Natl
Lab
Rodriguez LA, Toro ME, Vazquez F et al (2010) Bioethanol production from grape and sugar beet
pomaces by solid-state fermentation. Int J Hydrog Energy 35:5914–5917
Romani A, Garrote G, López F, Parajó JC (2011) Eucalyptus globulus wood fractionation by
autohydrolysis and organosolv delignification. Bioresour Technol 102:5896–5904
Rubens C (2008) Fourth-generation biofuels. https://gigaom.com/2008/03/04/wtf-are-fourth-gener
Rulli MC, Bellomi D, Cazzoli A et al (2016) The water-land-food nexus of first-generation biofuels.
Sci Rep 6(22521):1–10
Saini JK, Saini R, Tewari L (2015) Lignocellulosic agriculture wastes as biomass feedstocks for
second-generation bioethanol production: concepts and recent developments. 3 Biotech
5:337–353
Salazar-Ordóñez M, Pérez-Hernández PP, Martin-Lozano JM (2013) Sugar beet for bioethanol
production: an approach based on environmental agricultural outputs. Energy Policy
55:662–668
Sánchez C (2009) Lignocellulosic residues: biodegradation and bioconversion by fungi. Biotechnol
Adv 27:185–194
Sanchez OJ, Cardona CA (2008) Trends in biotechnological production of fuel ethanol from
different feedstocks. Bioresour Technol 99:5270–5295
Sangodoyin AY, Amori AA (2013) Aerobic composting of cassava peels using cowdung, sewage
sludge and poultry manure as supplements. Eur Int J Sci Technol 2:22–34
Sankh SN, Deshpande PS, Arvindekar AU (2011) Improvement of ethanol production using
Saccharomyces cerevisiae by enhancement of biomass and nutrient supplementation. Appl
Biochem Biotechnol 164:1237–1245
Santana ÁL, Meireles MAA (2014) New starches are the trend for industry applications: a review.
Food Public Heal 4:229–241
Sarkar N, Ghosh SK, Bannerjee S, Aikat K (2012) Bioethanol production from agricultural wastes:
an overview. Renew Energy 37:19–27
Sarris D, Papanikolaou S (2016) Biotechnological production of ethanol: biochemistry, processes
and technologies. Eng Life Sci 16:307–329
Sasaki K, Tsuge Y, Sasaki D et al (2015) Repeated ethanol production from sweet sorghum juice
concentrated by membrane separation. Bioresour Technol 186:351–355
Saunders J, Izydorczyk M, Levin DB (2011) Limitations and challenges for wheat-based bioethanol
production. In: Economic effects of biofuel production. InTech, pp 1–27
Scholz MJ, Riley MR, Cuello JL (2013) Acid hydrolysis and fermentation of microalgal starches to
ethanol by the yeast Saccharomyces cerevisiae. Biomass Bioenergy 48:59–65
Sekhon RS, Breitzman MW, Silva RR et al (2016) Stover composition in maize and sorghum
reveals remarkable genetic variation and plasticity for carbohydrate accumulation. Front Plant
Sci 7(822):1–10
198
B. Kumar et al.
cassava starch and flour. In: Cassava farming, uses econ impacts. Nova, Hauppauge, pp 1–32
Razmovski R, Vučurović V (2012) Bioethanol production from sugar beet molasses and thick juice
using Saccharomyces cerevisiae immobilized on maize stem ground tissue. Fuel 92:1–8
Reina L, Botto E, Mantero C et al (2016) Production of second generation ethanol using Eucalyptus
dunnii bark residues and ionic liquid pretreatment. Biomass Bioenergy 93:116–121
Reyimu Z, Ízšimen D (2017) Batch cultivation of marine microalgae Nannochloropsis oculata and
Tetraselmis suecica in treated municipal wastewater toward bioethanol production. J Clean Prod
150:40–46
RFA (2015) Going Global 2015 Bioethanol Industry Outlook. Renew Fuel Assoc
Rizza LS, Smachetti MES, Do Nascimento M et al (2017) Bioprospecting for native microalgae as
an alternative source of sugars for the production of bioethanol. Algal Res 22:140–147
Robert D, Perlack LLW, Turhollow AF, et al (2005) Biomass as feedstock for a bioenergy and
bioproducts industry: the technical feasibility of a billion-ton annual supply. Oak Ridge Natl
Lab
Rodriguez LA, Toro ME, Vazquez F et al (2010) Bioethanol production from grape and sugar beet
pomaces by solid-state fermentation. Int J Hydrog Energy 35:5914–5917
Romani A, Garrote G, López F, Parajó JC (2011) Eucalyptus globulus wood fractionation by
autohydrolysis and organosolv delignification. Bioresour Technol 102:5896–5904
Rubens C (2008) Fourth-generation biofuels. https://gigaom.com/2008/03/04/wtf-are-fourth-gener
Rulli MC, Bellomi D, Cazzoli A et al (2016) The water-land-food nexus of first-generation biofuels.
Sci Rep 6(22521):1–10
Saini JK, Saini R, Tewari L (2015) Lignocellulosic agriculture wastes as biomass feedstocks for
second-generation bioethanol production: concepts and recent developments. 3 Biotech
5:337–353
Salazar-Ordóñez M, Pérez-Hernández PP, Martin-Lozano JM (2013) Sugar beet for bioethanol
production: an approach based on environmental agricultural outputs. Energy Policy
55:662–668
Sánchez C (2009) Lignocellulosic residues: biodegradation and bioconversion by fungi. Biotechnol
Adv 27:185–194
Sanchez OJ, Cardona CA (2008) Trends in biotechnological production of fuel ethanol from
different feedstocks. Bioresour Technol 99:5270–5295
Sangodoyin AY, Amori AA (2013) Aerobic composting of cassava peels using cowdung, sewage
sludge and poultry manure as supplements. Eur Int J Sci Technol 2:22–34
Sankh SN, Deshpande PS, Arvindekar AU (2011) Improvement of ethanol production using
Saccharomyces cerevisiae by enhancement of biomass and nutrient supplementation. Appl
Biochem Biotechnol 164:1237–1245
Santana ÁL, Meireles MAA (2014) New starches are the trend for industry applications: a review.
Food Public Heal 4:229–241
Sarkar N, Ghosh SK, Bannerjee S, Aikat K (2012) Bioethanol production from agricultural wastes:
an overview. Renew Energy 37:19–27
Sarris D, Papanikolaou S (2016) Biotechnological production of ethanol: biochemistry, processes
and technologies. Eng Life Sci 16:307–329
Sasaki K, Tsuge Y, Sasaki D et al (2015) Repeated ethanol production from sweet sorghum juice
concentrated by membrane separation. Bioresour Technol 186:351–355
Saunders J, Izydorczyk M, Levin DB (2011) Limitations and challenges for wheat-based bioethanol
production. In: Economic effects of biofuel production. InTech, pp 1–27
Scholz MJ, Riley MR, Cuello JL (2013) Acid hydrolysis and fermentation of microalgal starches to
ethanol by the yeast Saccharomyces cerevisiae. Biomass Bioenergy 48:59–65
Sekhon RS, Breitzman MW, Silva RR et al (2016) Stover composition in maize and sorghum
reveals remarkable genetic variation and plasticity for carbohydrate accumulation. Front Plant
Sci 7(822):1–10
198
B. Kumar et al.
