profitable bioenergy recovery and net profit. Bioresour Technol 267:281–290. https://doi.org/
10.1016/j.biortech.2018.07.046
Banu JR, Tamilarasan T, Kavitha S, Gunasekaran M, Al-Muhtaseb AAH (2019) Energetically
feasible biohydrogen production from sea eelgrass via homogenization through a surfactant,
sodium tripolyphosphate. Int J Hydrog Energy 45(10):1–11
Barsanti L, Coltelli P, Evangelista V, Frassanito AM, Passarelli V, Vesentini N, Gualtieri P (2008)
Oddities and curiosities in the algal world. In: Evangelista V, Barsanti L, Frassanito AM,
Passarelli V, Gualtieri P (eds) Algal toxins: nature, occurrence, effect and detection. Springer,
Dordrecht, pp 353–391
Batyrova K, Hallenbeck PC (2017) Hydrogen production by a Chlamydomonas reinhardtii strain
with inducible expression of photosystem II. Int J Mol Sci 18:647
Bayro-Kaiser V, Nelson N (2016) Temperature-sensitive PSII: a novel approach for sustained
photosynthetic hydrogen production. Photosynth Res 130:113–121
Beacham TA, Sweet JB, Allen MJ (2017) Large scale cultivation of genetically modified
microalgae: a new era for environmental risk assessment. Algal Res 25:90–100
Bechet Q, Laviale M, Arsapin N, Bonnefond H, Bernard O (2017) Modeling the impact of high
temperatures on microalgal viability and photosynthetic activity. Biotechnol Biofuels 10:136
Behera S, Singh R, Arora R, Sharma NK, Shukla M, Kumar S (2015) Scope of algae as third
generation biofuels Frontiers in bioengineering and biotechnology. Mar Biotechnol 90(2):1–13
Bharathiraja B, Sudharsanaa T, Bharghavi A et al (2016) Biohydrogen and biogas—an overview on
feedstocks and enhancement process. Fuel 185:810–828
Böck A, King PW, Blokesch M, Posewitz MC (2006) Maturation of hydrogenases. Adv Microb
Physiol 51:1–71
Borowitzka MA (1999) Commercial production of microalgae: ponds, tanks, tubes and fermenters.
Biotechnol 70:313–321
Brennan L, Owende P (2010) Biofuels from microalgae- a review of technologies for production,
processing, and extractions of biofuels and co-products. Renew Sust Energ Rev 14:557–577
Bridgewater AV (2003) Renewable fuels and chemicals by thermal processing of biomass. Chem
Eng J 91(2–3):87–102
Brown MR, Miller KA (1992) The ascorbic acid content of eleven species of microalgae used in
mariculture. J Appl Phycol 4:205–215
Brown MR, Jeffrey SW, Garland CD (1989) Nutritional aspects of microalgae used in mariculture;
a literature review, CSIRO marine laboratories report 205, p 44
Bruckner CG, Rehm C, Grossart HP, Kroth PG (2011) Growth and release of extracellular organic
compounds by benthic diatoms depend on interactions with bacteria. Environ Microbiol 13
(4):1052–1063
Caffrey SA, Park HS, Voordouw JK, He Z, Zhou J, Voordouw G (2007) Function of periplasmic
hydrogenases in the sulfate-reducing bacterium Desulfovibrio vulgaris Hildenborough. J
Bacteriol 189(17):6159–6167
Cai X, Zhang X, Wang D (2011) Land availability for biofuel production. Environ Sci Technol
45:334–339
Carney LT, Lane TW (2014) Parasites in algae mass culture. Front Microbiol 5:278
Carney LT, Wilkenfeld JS, Lane PD, Solberg OD, Fuqua ZB, Cornelius NG, Gillespie S, Williams
KP, Samocha TM, Lane TW (2016) Pond crash forensics: presumptive identification of pond
crash agents by next generation sequencing in replicate raceway mass cultures of
Nannochloropsis salina. Algal Res 17:341–347
Carlsson AS, Beilen JB, Moller R, Clayton D (2007) Micro-algae and macro-algae: utility for
industrials applications. In: Bowles D (ed), pp 9–33
Cavaliere M, Feng S, Soyer OS, Jimenez JI (2017) Cooperation in microbial communities and their
biotechnological applications. Environ Microbiol 19:2949–2963
Ceron Garcia MC, Sanchez Miron A, Fernandez Sevilla JM, Molina Grima E, Garcia Camacho F
(2005) Mixotrophic growth of the microalga Phaeodactylum tricornutum: influence of different
210
R. Kumar et al.
Précédent

- 219/350

Suivant