direction might help in developing industrially relevant microalgal species for
carbon-neutral hydrogen generation.
References
Almon, H., & Bӧger, P. 1988. Nitrogen and hydrogen metabolism: induction and measurement.
Methods in Enzymology, Academic Press, 167.
Baebprasert, W., Lindblad, P., & Incharoensakdi, A. (2010). Response of H 2 production and
Hox-hydrogenase activity to external factors in the unicellular cyanobacterium Synechocystis
sp. strain PCC 6803. International Journal of Hydrogen Energy, 35(13), 6611–6616.
Batista, A. P., Moura, P., Marques, P. A. S. S., Ortigueira, J., Alves, L., & Gouveia, L. (2014).
Scenedesmus obliquus as feedstock for biohydrogen production by Enterobacter aerogenes
and Clostridium butyricum. Fuel, 117, 537–543.
Benemann, J. R. (2000). Hydrogen production by microalgae. Journal of Applied Phycology, 12,
291–300.
Bernát, G., Waschewski, N., & Rögner, M. (2009). Towards efficient hydrogen production: The
impact of antenna size and external factors on electron transport dynamics in Synechocystis
PCC 6803. Photosynthesis Research, 99(3), 205–216.
Borodin, V. B., Tsygankov, A. A., Rao, K. K., & Hall, D. O. (2000). Hydrogen production by
Anabaena variabilis PK84 under simulated outdoor conditions. Biotechnology and
Bioengineering, 69(5), 478–485.
Burrows, E. H., Chaplen, F. W. R., & Ely, R. L. (2008). Optimization of media nutrient
composition for increased photofermentative hydrogen production by Synechocystis sp. PCC
6803. International Journal of Hydrogen Energy, 33(21), 6092–6099.
Chen, C. Y., Zhao, X. Q., Yen, H. W., Ho, S. H., Cheng, C. L., Lee, D. J., et al. (2013).
Microalgae-based carbohydrates for biofuel production. Biochemical Engineering Journal, 78,
1–10.
Cheng, J., Liu, Y., Lin, R., Xia, A., Zhou, J., & Cen, K. (2014). Cogeneration of hydrogen and
methane from the pretreated biomass of algae bloom in Taihu Lake. International Journal of
Hydrogen Energy, 39(33), 18793–18802.
Cheng, J., Xia, A., Liu, Y., Lin, R., Zhou, J., & Cen, K. (2012). Combination of dark- and
photo-fermentation to improve hydrogen production from Arthrospira platensis wet biomass
with ammonium removal by zeolite. International Journal of Hydrogen Energy, 37(18),
13330–13337.
Das, D., & Veziroğlu, T. N. (2001). Hydrogen production by biological proceses: A survey of
literature. International Journal of Hydrogen Energy, 26, 13–28.
Das, D., Khanna, N., & Dasgupta, C. N. (2014). Biohydrogen production: Fundamentals and
technology advances. CRC Press, Taylor and Francis Group, LLC.
Doebbe, A., Rupprecht, J., Beckmann, J., Mussgnug, J. H., Hallmann, A., Hankamer, B., et al.
(2007). Functional integration of the HUP1 hexose symporter gene into the genome of C.
reinhardtii: Impacts on biological H 2 production. Journal of Biotechnology, 131(1), 27–33.
Eroglu, E., & Melis, A. (2011). Photobiological hydrogen production: Recent advances and state
of the art. Bioresource Technology, 102(18), 8403–8413.
Fernández-Sevilla, J. M., Acién-Fernández, F. G., & Molina-Grima, E. (2014). Microbial
bioenergy: Hydrogen production. Advances in Photosynthesis and Respiration, 38, 291–320.
Forestier, M., King, P., Zhang, L., Posewitz, M., Schwarzer, S., Happe, T., et al. (2003).
Expression of two [Fe] -hydrogenases in Chlamydomonas reinhardtii under anaerobic
conditions. European Journal of Biochemistry, 270, 2750–2758.
Gaffron, H., & Rubin, J. (1942). Fermentatinve and photochemical production of hydrogen in
algae. The Journal of General Physiology, 26(2), 219–240.
10 Biofuels from Microalgae: Biohydrogen
223
carbon-neutral hydrogen generation.
References
Almon, H., & Bӧger, P. 1988. Nitrogen and hydrogen metabolism: induction and measurement.
Methods in Enzymology, Academic Press, 167.
Baebprasert, W., Lindblad, P., & Incharoensakdi, A. (2010). Response of H 2 production and
Hox-hydrogenase activity to external factors in the unicellular cyanobacterium Synechocystis
sp. strain PCC 6803. International Journal of Hydrogen Energy, 35(13), 6611–6616.
Batista, A. P., Moura, P., Marques, P. A. S. S., Ortigueira, J., Alves, L., & Gouveia, L. (2014).
Scenedesmus obliquus as feedstock for biohydrogen production by Enterobacter aerogenes
and Clostridium butyricum. Fuel, 117, 537–543.
Benemann, J. R. (2000). Hydrogen production by microalgae. Journal of Applied Phycology, 12,
291–300.
Bernát, G., Waschewski, N., & Rögner, M. (2009). Towards efficient hydrogen production: The
impact of antenna size and external factors on electron transport dynamics in Synechocystis
PCC 6803. Photosynthesis Research, 99(3), 205–216.
Borodin, V. B., Tsygankov, A. A., Rao, K. K., & Hall, D. O. (2000). Hydrogen production by
Anabaena variabilis PK84 under simulated outdoor conditions. Biotechnology and
Bioengineering, 69(5), 478–485.
Burrows, E. H., Chaplen, F. W. R., & Ely, R. L. (2008). Optimization of media nutrient
composition for increased photofermentative hydrogen production by Synechocystis sp. PCC
6803. International Journal of Hydrogen Energy, 33(21), 6092–6099.
Chen, C. Y., Zhao, X. Q., Yen, H. W., Ho, S. H., Cheng, C. L., Lee, D. J., et al. (2013).
Microalgae-based carbohydrates for biofuel production. Biochemical Engineering Journal, 78,
1–10.
Cheng, J., Liu, Y., Lin, R., Xia, A., Zhou, J., & Cen, K. (2014). Cogeneration of hydrogen and
methane from the pretreated biomass of algae bloom in Taihu Lake. International Journal of
Hydrogen Energy, 39(33), 18793–18802.
Cheng, J., Xia, A., Liu, Y., Lin, R., Zhou, J., & Cen, K. (2012). Combination of dark- and
photo-fermentation to improve hydrogen production from Arthrospira platensis wet biomass
with ammonium removal by zeolite. International Journal of Hydrogen Energy, 37(18),
13330–13337.
Das, D., & Veziroğlu, T. N. (2001). Hydrogen production by biological proceses: A survey of
literature. International Journal of Hydrogen Energy, 26, 13–28.
Das, D., Khanna, N., & Dasgupta, C. N. (2014). Biohydrogen production: Fundamentals and
technology advances. CRC Press, Taylor and Francis Group, LLC.
Doebbe, A., Rupprecht, J., Beckmann, J., Mussgnug, J. H., Hallmann, A., Hankamer, B., et al.
(2007). Functional integration of the HUP1 hexose symporter gene into the genome of C.
reinhardtii: Impacts on biological H 2 production. Journal of Biotechnology, 131(1), 27–33.
Eroglu, E., & Melis, A. (2011). Photobiological hydrogen production: Recent advances and state
of the art. Bioresource Technology, 102(18), 8403–8413.
Fernández-Sevilla, J. M., Acién-Fernández, F. G., & Molina-Grima, E. (2014). Microbial
bioenergy: Hydrogen production. Advances in Photosynthesis and Respiration, 38, 291–320.
Forestier, M., King, P., Zhang, L., Posewitz, M., Schwarzer, S., Happe, T., et al. (2003).
Expression of two [Fe] -hydrogenases in Chlamydomonas reinhardtii under anaerobic
conditions. European Journal of Biochemistry, 270, 2750–2758.
Gaffron, H., & Rubin, J. (1942). Fermentatinve and photochemical production of hydrogen in
algae. The Journal of General Physiology, 26(2), 219–240.
10 Biofuels from Microalgae: Biohydrogen
223