Raheem A, Prinsen P, Vuppaladadiyam AK, Zhao M, Luque R (2018) A review on sustainable
microalgae based biofuel and bioenergy production: recent developments. J Clean Prod
181:42–59
Rajkumar R, Yaakob Z, Takriff MS (2014) Potential of the micro and macroalgae for biofuel
production: a brief review. Bio Res 9:1606–1633
Ran C, Xingju Y, Zhang MJW (2008) Role of carbonyl cyanide m-chlorophenyl hydrazone in
enhancing photobiological hydrogen production by marine green alga Platymonas
subcordiformis. Biotechnol Progress 22(2):438–443
Rashid TR, Phan DT, Chung GS (2013) A flexible hydrogen sensor based on Pd nanoparticles
decorated ZnO nanorods grown on polyimide tape. Sensors Actuators B Chem 185:777–784
Ras M, Lardon L, Bruno S, Bernet N, Steyer JP (2011) Experimental study on a coupled process of
production and anaerobic digestion of Chlorella vulgaris. Bioresour Technol 102:200–206
Rathore D, Singh A (2013) Biohydrogen production from microalgae. In: Gupta VK, Tuohy MG
(eds) Biofuels technologies recent developments. Springer, Berlin, pp 317–333
Rebello S, Anoopkumar AN, Embalil MA, Sindhu R, Binod P, Pande A (2020) Sustainability and
life cycle assessments of lignocellulosic and algal pretreatments. Bioresour Technol 301:122678
Redwood MD, Mikheenko IP, Sargent F, Macaskie LE (2008) Dissecting the roles of Escherichia
coli hydrogenases in biohydrogen production. FEMS Microbiol Lett 278(1):48–55
Rezvani F, Sarrafzadeh M-H, Oh H-M (2020) Hydrogen producer microalgae in interaction with
hydrogen consumer denitrifiers as a novel strategy for nitrate removal from groundwater and
biomass production. Algal Res 45:101747
Rosenberg JN, Oyler GA, Wilkinson L, Betenbaugh MJ (2008) A green light for engineered algae:
redirecting metabolism to fuel a biotechnology revolution. Curr Opin Biotechnol 19:430–436
Rushan NH, Mat Yasin NH, Sepian NRA, Said FM, Shafei NI (2019) Effect of immobilization
method on the growth of Chlorella vulgaris and fatty acid profile for biodiesel production.
Indones J Chem 19(3):767–776
Rushan NH, Yasin NHM, Said FM, Ramesh N (2020) Immobilised Chlorella vulgaris as an
alternative for the enhancement of microalgae oil and biodiesel production. Bull Chem React
Eng Catal 15(2):379–389
Saba B, Christy AD, Yu Z, Co AC (2017) Sustainable power generation from bacterio-algal
microbial fuel cells (MFCs): an overview. Renew Sust Energ Rev 73:75–84
Saifuddin N, Parthasarthi P (2016) Developments in bio-hydrogen production from algae: a review.
Res J Appl Sci Eng Technol 12:968–982
Sahoo D, Yarish C (2005) Mariculture of seaweeds. In: Phycological methods: algal culturing
techniques. Academic Press, New York, pp 219–237
Salvucci ME, Crafts-Brandner SJ (2004) Relationship between the heat tolerance of photosynthesis
and the thermal stability of rubisco activase in plants from contrasting thermal environments.
Plant Physiol 134(4):1460–1470
Sambles C, Moore K, Lux TM, Jones K, Littlejohn GR, Gouveia JD, Aves SJ, Studholme DJ, Lee
R, Love J (2017) Metagenomic analysis of the complex microbial consortium associated with
cultures of the oil-rich alga Botryococcus braunii. MicrobiologyOpen 6(4):e00482
Sandbakken IS, Sæther M, Funderud J, Aasen IM (2018) Acid preservation of Saccharina latissima
for application as a carbon source for fermentation to biofuels and chemicals. J Appl Phycol
30:1–8
Saqib A, Tabbssum MR, Rashid U, Ibrahim M, Gill SS, Mehmood MA (2013) Marine macroalgae
Ulva: a potential feed-stock for bioethanol and biogas production. Asian J Agri Biol 1:155–163
Satoh A, Kurano N, Senger H, Miyachi S (2002) Regulation of energy balance in photosystems in
response to changes in CO2 concentrations and light intensities during growth in extremelyhigh-CO2-tolerant green microalgae. Plant Cell Physiol 43(4):440–451
Savage N (2011) Algae: the scum solution. Nature 474(7352):S15–S16
Schroda M (2004) The Chlamydomonas genome reveals its secrets: chaperone genes and the
potential roles of their gene products in the chloroplast. Photosynth Res 82:221–240
220
R. Kumar et al.
microalgae based biofuel and bioenergy production: recent developments. J Clean Prod
181:42–59
Rajkumar R, Yaakob Z, Takriff MS (2014) Potential of the micro and macroalgae for biofuel
production: a brief review. Bio Res 9:1606–1633
Ran C, Xingju Y, Zhang MJW (2008) Role of carbonyl cyanide m-chlorophenyl hydrazone in
enhancing photobiological hydrogen production by marine green alga Platymonas
subcordiformis. Biotechnol Progress 22(2):438–443
Rashid TR, Phan DT, Chung GS (2013) A flexible hydrogen sensor based on Pd nanoparticles
decorated ZnO nanorods grown on polyimide tape. Sensors Actuators B Chem 185:777–784
Ras M, Lardon L, Bruno S, Bernet N, Steyer JP (2011) Experimental study on a coupled process of
production and anaerobic digestion of Chlorella vulgaris. Bioresour Technol 102:200–206
Rathore D, Singh A (2013) Biohydrogen production from microalgae. In: Gupta VK, Tuohy MG
(eds) Biofuels technologies recent developments. Springer, Berlin, pp 317–333
Rebello S, Anoopkumar AN, Embalil MA, Sindhu R, Binod P, Pande A (2020) Sustainability and
life cycle assessments of lignocellulosic and algal pretreatments. Bioresour Technol 301:122678
Redwood MD, Mikheenko IP, Sargent F, Macaskie LE (2008) Dissecting the roles of Escherichia
coli hydrogenases in biohydrogen production. FEMS Microbiol Lett 278(1):48–55
Rezvani F, Sarrafzadeh M-H, Oh H-M (2020) Hydrogen producer microalgae in interaction with
hydrogen consumer denitrifiers as a novel strategy for nitrate removal from groundwater and
biomass production. Algal Res 45:101747
Rosenberg JN, Oyler GA, Wilkinson L, Betenbaugh MJ (2008) A green light for engineered algae:
redirecting metabolism to fuel a biotechnology revolution. Curr Opin Biotechnol 19:430–436
Rushan NH, Mat Yasin NH, Sepian NRA, Said FM, Shafei NI (2019) Effect of immobilization
method on the growth of Chlorella vulgaris and fatty acid profile for biodiesel production.
Indones J Chem 19(3):767–776
Rushan NH, Yasin NHM, Said FM, Ramesh N (2020) Immobilised Chlorella vulgaris as an
alternative for the enhancement of microalgae oil and biodiesel production. Bull Chem React
Eng Catal 15(2):379–389
Saba B, Christy AD, Yu Z, Co AC (2017) Sustainable power generation from bacterio-algal
microbial fuel cells (MFCs): an overview. Renew Sust Energ Rev 73:75–84
Saifuddin N, Parthasarthi P (2016) Developments in bio-hydrogen production from algae: a review.
Res J Appl Sci Eng Technol 12:968–982
Sahoo D, Yarish C (2005) Mariculture of seaweeds. In: Phycological methods: algal culturing
techniques. Academic Press, New York, pp 219–237
Salvucci ME, Crafts-Brandner SJ (2004) Relationship between the heat tolerance of photosynthesis
and the thermal stability of rubisco activase in plants from contrasting thermal environments.
Plant Physiol 134(4):1460–1470
Sambles C, Moore K, Lux TM, Jones K, Littlejohn GR, Gouveia JD, Aves SJ, Studholme DJ, Lee
R, Love J (2017) Metagenomic analysis of the complex microbial consortium associated with
cultures of the oil-rich alga Botryococcus braunii. MicrobiologyOpen 6(4):e00482
Sandbakken IS, Sæther M, Funderud J, Aasen IM (2018) Acid preservation of Saccharina latissima
for application as a carbon source for fermentation to biofuels and chemicals. J Appl Phycol
30:1–8
Saqib A, Tabbssum MR, Rashid U, Ibrahim M, Gill SS, Mehmood MA (2013) Marine macroalgae
Ulva: a potential feed-stock for bioethanol and biogas production. Asian J Agri Biol 1:155–163
Satoh A, Kurano N, Senger H, Miyachi S (2002) Regulation of energy balance in photosystems in
response to changes in CO2 concentrations and light intensities during growth in extremelyhigh-CO2-tolerant green microalgae. Plant Cell Physiol 43(4):440–451
Savage N (2011) Algae: the scum solution. Nature 474(7352):S15–S16
Schroda M (2004) The Chlamydomonas genome reveals its secrets: chaperone genes and the
potential roles of their gene products in the chloroplast. Photosynth Res 82:221–240
220
R. Kumar et al.
