Díaz, I., Pérez, C., Alfaro, N., & Fdz-Polanco, F. (2015). A feasibility study on the bioconversion
of CO 2 and H 2 to biomethane by gas sparging through polymeric membranes. Bioresource
Technology, 185, 246–253.
Derenne, S., Largeau, C., Berkaloff, C., Rousseau, B., Wilhelm, C., & Hatcher, P. G. (1992).
Non-hydrolysable macromolecular constituents from outer walls of Chlorella fusca and
Nanochlorum eucaryotum. Phytochemistry, 31(6), 1923–1929.
Domozych, D. S., Stewart, K. D., & Mattox, K. R. (1980). The comparative aspects of cell wall
chemistry in the green algae (Chlorophyta). Journal of Molecular Evolution, 15(1), 1–12,
ISSN: 1432-1432.
Donoso-Bravo, A., Mailier, J., Martin, C., Rodríguez, J., Aceves-Lara, C. A., & Vande Wouwer,
A. (2011). Model selection, identification and validation in anaerobic digestion: A review.
Water Research, 45, 5347–5364.
Donoso-Bravo, A., Pérez-Elvira, S. I., & Fdz-Polanco, F. (2010). Application of simplified models
for anaerobic biodegradability tests. Evaluation of pre-treatment processes. Chemical
Engineering Journal, 160, 607–614.
Ehimen, E. A., Sun, Z. F., Carrington, C. G., Birch, E. J., & Eaton-Rye, J. J. (2011). Anaerobic
digestion of microalgae residues resulting from the biodiesel production process. Applied
Energy, 88(10), 3454–3463.
Fernandez-Rodriguez, M. J., Rincon, B., Fermoso, F. G., Jimenez, A. M., & Borja, R. (2014).
Assessment of two-phase olive mill solid waste and microalgae co-digestion to improve
methane production and process kinetics. Bioresource Technology, 157, 263–269.
Gabriel, D., Deshusses, M. A., & Gamisans, X. (2013). Desulfurization of biogas in biotrickling
filter. In: John Wiley & Sons (Ed.), Air pollution prevention and control: Bioreactors and
bioenergy (1st ed., pp. 513–523). Wiley: Hoboken.
Gelin, F., Boogers, I., Noordeloos, A. A. M., Damsté J. S. S., Riegman, R., & De Leeuw J. W.
(1997). Resistant biomacromolecules in marine microalgae of the classes eustigmatophyceae
and chlorophyceae: Geochemical implications. Organic Geochemistry, 26(11–12), 659–675.
Giménez, J. B., Aguado, D., Bouzas, A., Ferrer, J., & Seco, A. (2017). Use of rumen
microorganisms to boost the anaerobic biodegradability of microalgae. Algal Research, 24,
309–316.
Golueke, C. G., Oswald, W. J., & Gotaas, H. B. (1957). Anaerobic digestion of Algae. Applied
Microbiology, 5(1), 47–55.
González-Fernández, C., Sialve, B., Bernet, N., & Steyer, J. P. (2012). Impact of micro- algae
characteristics on their conversion to biofuel. Part II: Focus on biomethane production.
Biofuels, Bioproducts and Biorefining, 6(2), 205–218.
Grobbelaar, J. U. (2004). Algal nutrition. In A. Richmond (Ed.), Handbook of microalgal culture:
Biotechnology and applied phycology, Hoboken: Wiley-Blackwell.
Herrmann, C., Kalita, N., Wall, D., Xia, A., & Murphy, J. D. (2016). Optimised biogas production
from microalgae through co-digestion with carbon-rich co-substrates. Bioresource Technology,
214, 328–337.
Hidaka, T., Takabe, Y., Tsumori, J., & Minamiyama, M. (2017). Characterization of microalgae
cultivated in continuous operation combined with anaerobic co-digestion of sewage sludge and
microalgae. Biomass and Bioenergy, 99, 139–146.
IEA, Task 40 and Task 37 Joint Study. http://task40.ieabioenergy.com/wp-content/uploads/2013/
09/t40-t37-biomethane-2014.pdf.
Jankowska, E., Sahu, A. K., & Oleskowicz-Popiel, P. (2017). Biogas from microalgae: Review on
microalgae’s cultivation, harvesting and pretreatment for anaerobic digestion. Renewable and
Sustainable Energy Reviews, 75, 692–709.
Kadouri, A., Derenne, S., Largeau, C., Casadevall, E., & Berkaloff, C. (1988). Resistant
biopolymer in the outer walls of Botryococcus braunii, B race. Phytochemistry, 27(2), 551–
557.
Kinnunen, V., Craggs, R., & Rintala, J. (2014). Influence of temperature and pretreatments on the
anaerobic digestion of wastewater grown microalgae in a laboratory-scale accumulating
volume reactor. Water Research, 57, 247–257.
12 Biofuels from Microalgae: Biomethane
267
of CO 2 and H 2 to biomethane by gas sparging through polymeric membranes. Bioresource
Technology, 185, 246–253.
Derenne, S., Largeau, C., Berkaloff, C., Rousseau, B., Wilhelm, C., & Hatcher, P. G. (1992).
Non-hydrolysable macromolecular constituents from outer walls of Chlorella fusca and
Nanochlorum eucaryotum. Phytochemistry, 31(6), 1923–1929.
Domozych, D. S., Stewart, K. D., & Mattox, K. R. (1980). The comparative aspects of cell wall
chemistry in the green algae (Chlorophyta). Journal of Molecular Evolution, 15(1), 1–12,
ISSN: 1432-1432.
Donoso-Bravo, A., Mailier, J., Martin, C., Rodríguez, J., Aceves-Lara, C. A., & Vande Wouwer,
A. (2011). Model selection, identification and validation in anaerobic digestion: A review.
Water Research, 45, 5347–5364.
Donoso-Bravo, A., Pérez-Elvira, S. I., & Fdz-Polanco, F. (2010). Application of simplified models
for anaerobic biodegradability tests. Evaluation of pre-treatment processes. Chemical
Engineering Journal, 160, 607–614.
Ehimen, E. A., Sun, Z. F., Carrington, C. G., Birch, E. J., & Eaton-Rye, J. J. (2011). Anaerobic
digestion of microalgae residues resulting from the biodiesel production process. Applied
Energy, 88(10), 3454–3463.
Fernandez-Rodriguez, M. J., Rincon, B., Fermoso, F. G., Jimenez, A. M., & Borja, R. (2014).
Assessment of two-phase olive mill solid waste and microalgae co-digestion to improve
methane production and process kinetics. Bioresource Technology, 157, 263–269.
Gabriel, D., Deshusses, M. A., & Gamisans, X. (2013). Desulfurization of biogas in biotrickling
filter. In: John Wiley & Sons (Ed.), Air pollution prevention and control: Bioreactors and
bioenergy (1st ed., pp. 513–523). Wiley: Hoboken.
Gelin, F., Boogers, I., Noordeloos, A. A. M., Damsté J. S. S., Riegman, R., & De Leeuw J. W.
(1997). Resistant biomacromolecules in marine microalgae of the classes eustigmatophyceae
and chlorophyceae: Geochemical implications. Organic Geochemistry, 26(11–12), 659–675.
Giménez, J. B., Aguado, D., Bouzas, A., Ferrer, J., & Seco, A. (2017). Use of rumen
microorganisms to boost the anaerobic biodegradability of microalgae. Algal Research, 24,
309–316.
Golueke, C. G., Oswald, W. J., & Gotaas, H. B. (1957). Anaerobic digestion of Algae. Applied
Microbiology, 5(1), 47–55.
González-Fernández, C., Sialve, B., Bernet, N., & Steyer, J. P. (2012). Impact of micro- algae
characteristics on their conversion to biofuel. Part II: Focus on biomethane production.
Biofuels, Bioproducts and Biorefining, 6(2), 205–218.
Grobbelaar, J. U. (2004). Algal nutrition. In A. Richmond (Ed.), Handbook of microalgal culture:
Biotechnology and applied phycology, Hoboken: Wiley-Blackwell.
Herrmann, C., Kalita, N., Wall, D., Xia, A., & Murphy, J. D. (2016). Optimised biogas production
from microalgae through co-digestion with carbon-rich co-substrates. Bioresource Technology,
214, 328–337.
Hidaka, T., Takabe, Y., Tsumori, J., & Minamiyama, M. (2017). Characterization of microalgae
cultivated in continuous operation combined with anaerobic co-digestion of sewage sludge and
microalgae. Biomass and Bioenergy, 99, 139–146.
IEA, Task 40 and Task 37 Joint Study. http://task40.ieabioenergy.com/wp-content/uploads/2013/
09/t40-t37-biomethane-2014.pdf.
Jankowska, E., Sahu, A. K., & Oleskowicz-Popiel, P. (2017). Biogas from microalgae: Review on
microalgae’s cultivation, harvesting and pretreatment for anaerobic digestion. Renewable and
Sustainable Energy Reviews, 75, 692–709.
Kadouri, A., Derenne, S., Largeau, C., Casadevall, E., & Berkaloff, C. (1988). Resistant
biopolymer in the outer walls of Botryococcus braunii, B race. Phytochemistry, 27(2), 551–
557.
Kinnunen, V., Craggs, R., & Rintala, J. (2014). Influence of temperature and pretreatments on the
anaerobic digestion of wastewater grown microalgae in a laboratory-scale accumulating
volume reactor. Water Research, 57, 247–257.
12 Biofuels from Microalgae: Biomethane
267