316
P. Prabakaran et al.
Ho SH et al (2013) Characterization and optimization of carbohydrate production from an
indigenous microalga Chlorella vulgaris FSP-E. Biores Technol 135:157–165
Ho S-H et al (2013) Bioprocess development on microalgae-based CO2 fixation and bioethanol
production using Scenedesmus obliquus CNW-N. Biores Technol 145:142–149
Ho SH et al (2013) Engineering strategies for improving the CO 2 fixation and carbohydrate
productivity of Scenedesmus obliquus CNW-N used for bioethanol fermentation. Biores Technol
143:163–171
Hwang J-H et al (2016) Enhancement of continuous fermentative bioethanol production using
combined treatment of mixed microalgal biomass. Algal Res 17:14–20
Hu Q (2007) Environmental effects on cell composition. In: Handbook of microalgal culture.
Blackwell Publishing Ltd, pp 83–94
International Energy Agency (2016) Excerpt from: renewables information. IEA Publishing, United
States of America, Statistics
Izumo A et al (2007) Physicochemical properties of starch in Chlorella change depending on the
CO 2 concentration during growth: Comparison of structure and properties of pyrenoid and stroma
starch. Plant Sci 172:1138–1147
Ji CF et al (2011) Effects of nutrient deprivation on biochemical compositions and photo-hydrogen
production of Tetraselmis subcordiformis. Int J Hydrogen Energy 36:5817–5821
Johnson MB, Wen Z (2009) Production of biodiesel fuel from the microalga schizochytrium
limacinum by direct transesterification of algal biomass. Energy Fuels 23:5179–5183
Kalnenieks U et al (2014) Modeling of Zymomonas mobilis central metabolism for novel metabolic
engineering strategies. Front Microbiol 5(42):2014
Kirkels A (2016) Biomass boom or bubble? A longitudinal study on expectation dynamics . Technol
Forecast Soc Chang 103:83–96
Kumar A et al (2010) Enhanced CO 2 fixation and biofuel production via microalgae: Recent
developments and future directions . Trends Biotechnol 28:371–380
Kim KH et al (2014) Bioethanol production from the nutrient stress-induced microalga Chlorella
vulgaris by enzymatic hydrolysis and immobilized yeast fermentation. Biores Technol 153:47–54
Li Y et al (2008) Effects of nitrogen sources on cell growth and lipid accumulation of green alga
Neochloris oleoabundans. Appl Microbiol Biotechnol 81:629–636
Liang Y et al (2009) Biomass and lipid productivities of Chlorella vulgaris under autotrophic,
heterotrophic and mixotrophic growth conditions. Biotech Lett 31:1043–1049
Lim S, Teong LK (2010) Recent trends, opportunities and challenges of biodiesel in Malaysia: An
overview. Renew Sustain Energy Rev 14:938–954
Lv et al (2010) Enhanced lipid production of Chlorella vulgaris by adjustment of cultivation
conditions J. M. Bioresource Technol 101: 6797–6804
Maity JP et al (2014) Microalgae for third generation biofuel production, mitigation of greenhouse
gas emissions and wastewater treatment: Present and future perspectives – A mini review, Energy
Martin J et al (2016) Saccharification of microalgae biomass obtained from wastewater treatment by
enzymatic hydrolysis. Effect of alkaline-peroxide pretreatment. Bioresour Technol 218:265–271
Masojídek J et al (2013) Photosynthesis in microalgae. In: Richmond A, Hu Q (eds) Handbook of
microalgal culture: applied phycology and biotechnology, 2nd ed. Wiley, New York, pp 21–36
Melis A et al (2000) Sustained photobiological hydrogen gas production upon reversible inactivation
of oxygen evolution in the green alga Chlamydomonas reinhardtii. Plant Physiol 122:127–135
Melis A (2007) Photosynthetic H 2 metabolism in Chlamydomonas reinhardtii (unicellular green
algae). Planta 226:1075–1086
Markou G et al (2012) Microalgal carbohydrates: an overview of the factors influencing carbohydrates production, and of main bioconversion technologies for production of biofuels. Appl
Microbiol Biotechnol 96:631–645
Mata TM et al (2010) Microalgae for biodiesel production and other applications: A review. Renew
Sustain Energy Rev 14:217–232
Morales-Sánchez D et al (2013) Heterotrophic growth of Neochloris oleoabundans using glucose
as a carbon source. Biotechnol Biofuels 6
P. Prabakaran et al.
Ho SH et al (2013) Characterization and optimization of carbohydrate production from an
indigenous microalga Chlorella vulgaris FSP-E. Biores Technol 135:157–165
Ho S-H et al (2013) Bioprocess development on microalgae-based CO2 fixation and bioethanol
production using Scenedesmus obliquus CNW-N. Biores Technol 145:142–149
Ho SH et al (2013) Engineering strategies for improving the CO 2 fixation and carbohydrate
productivity of Scenedesmus obliquus CNW-N used for bioethanol fermentation. Biores Technol
143:163–171
Hwang J-H et al (2016) Enhancement of continuous fermentative bioethanol production using
combined treatment of mixed microalgal biomass. Algal Res 17:14–20
Hu Q (2007) Environmental effects on cell composition. In: Handbook of microalgal culture.
Blackwell Publishing Ltd, pp 83–94
International Energy Agency (2016) Excerpt from: renewables information. IEA Publishing, United
States of America, Statistics
Izumo A et al (2007) Physicochemical properties of starch in Chlorella change depending on the
CO 2 concentration during growth: Comparison of structure and properties of pyrenoid and stroma
starch. Plant Sci 172:1138–1147
Ji CF et al (2011) Effects of nutrient deprivation on biochemical compositions and photo-hydrogen
production of Tetraselmis subcordiformis. Int J Hydrogen Energy 36:5817–5821
Johnson MB, Wen Z (2009) Production of biodiesel fuel from the microalga schizochytrium
limacinum by direct transesterification of algal biomass. Energy Fuels 23:5179–5183
Kalnenieks U et al (2014) Modeling of Zymomonas mobilis central metabolism for novel metabolic
engineering strategies. Front Microbiol 5(42):2014
Kirkels A (2016) Biomass boom or bubble? A longitudinal study on expectation dynamics . Technol
Forecast Soc Chang 103:83–96
Kumar A et al (2010) Enhanced CO 2 fixation and biofuel production via microalgae: Recent
developments and future directions . Trends Biotechnol 28:371–380
Kim KH et al (2014) Bioethanol production from the nutrient stress-induced microalga Chlorella
vulgaris by enzymatic hydrolysis and immobilized yeast fermentation. Biores Technol 153:47–54
Li Y et al (2008) Effects of nitrogen sources on cell growth and lipid accumulation of green alga
Neochloris oleoabundans. Appl Microbiol Biotechnol 81:629–636
Liang Y et al (2009) Biomass and lipid productivities of Chlorella vulgaris under autotrophic,
heterotrophic and mixotrophic growth conditions. Biotech Lett 31:1043–1049
Lim S, Teong LK (2010) Recent trends, opportunities and challenges of biodiesel in Malaysia: An
overview. Renew Sustain Energy Rev 14:938–954
Lv et al (2010) Enhanced lipid production of Chlorella vulgaris by adjustment of cultivation
conditions J. M. Bioresource Technol 101: 6797–6804
Maity JP et al (2014) Microalgae for third generation biofuel production, mitigation of greenhouse
gas emissions and wastewater treatment: Present and future perspectives – A mini review, Energy
Martin J et al (2016) Saccharification of microalgae biomass obtained from wastewater treatment by
enzymatic hydrolysis. Effect of alkaline-peroxide pretreatment. Bioresour Technol 218:265–271
Masojídek J et al (2013) Photosynthesis in microalgae. In: Richmond A, Hu Q (eds) Handbook of
microalgal culture: applied phycology and biotechnology, 2nd ed. Wiley, New York, pp 21–36
Melis A et al (2000) Sustained photobiological hydrogen gas production upon reversible inactivation
of oxygen evolution in the green alga Chlamydomonas reinhardtii. Plant Physiol 122:127–135
Melis A (2007) Photosynthetic H 2 metabolism in Chlamydomonas reinhardtii (unicellular green
algae). Planta 226:1075–1086
Markou G et al (2012) Microalgal carbohydrates: an overview of the factors influencing carbohydrates production, and of main bioconversion technologies for production of biofuels. Appl
Microbiol Biotechnol 96:631–645
Mata TM et al (2010) Microalgae for biodiesel production and other applications: A review. Renew
Sustain Energy Rev 14:217–232
Morales-Sánchez D et al (2013) Heterotrophic growth of Neochloris oleoabundans using glucose
as a carbon source. Biotechnol Biofuels 6
