Khan, M. I., Lee, M. G., Shin, J. H., & Kim, J. D. (2017). Pretreatment optimization of the
biomass of Microcystis aeruginosa for efficient bioethanol production. AMB Express, 7, 19.
Kim, B., Im, H., & Lee, J. W. (2015). In situ transesterification of highly wet microalgae using
hydrochloric acid. Bioresource Technology, 185, 421–425.
Kim, J., Yoo, G., Lee, H., Lim, J., Kim, K., Kim, C. W., et al. (2013). Methods of downstream
processing for the production of biodiesel from microalgae. Biotechnology Advances, 31,
862–876.
Kraai, G. N., Schuur, B., van Zwol, F., van de Bovenkamp, H. H., Heeres, H. J. (2009). Novel
highly integrated biodiesel production technology in a centrifugal contactor separator device.
Chemical Engineering Journal, 154, 384–389. https://doi.org/10.1016/j.cej.2009.04.047.
Lee, Y., & Li, P. (2016). Using resonant ultrasound field-incorporated dynamic photobioreactor
system to enhance medium replacement process for concentrated microalgae cultivation in
continuous mode. Chemical Engineering Research and Design, 118, 112–120.
Lee, K. T., Lim, S., Pang, Y. L., Ong, H. C., & Chong, W. T. (2014). Integration of reactive
extraction with supercritical fluids for process intensification of biodiesel production: Prospects
and recent advances. Progress in Energy and Combustion Science, 45, 54–78.
Lee, J. Y., Yoo, C., Jun, S. Y., Ahn, C. Y., & Oh, H. M. (2010). Comparison of several methods
for effective lipid extraction from microalgae. Bioresource Technology, 101, S75–S77.
Li, Y., Chen, Y. F., Chen, P., Min, M., Zhou, W., Martinez, B., et al. (2011a). Characterization of
a microalga Chlorella sp. well adapted to highly concentrated municipal wastewater for
nutrient removal and biodiesel production. Bioresource Technology, 102, 5138–5144.
Li, Y., Lian, S., Tong, D., Song, R., Yang, W., Fan, Y., et al. (2011b). One-step production of
biodiesel from Nannochloropsis sp. on solid base Mg–Zr catalyst. Applied Energy, 88,
3313–3317.
Lu, W., Wang, Z., Wang, X., & Yuan, Z. (2015). Cultivation of Chlorella sp. using raw diary
wastewater for nutrient removal and biodiesel production: Characteristics comparison of indoor
bench-scale and outdoor pilot-scale cultures. Bioresource Technology, 192, 382–388.
Mazubert, A., Poux, M., & Aubin, J. (2013). Intensified processes for FAME production from
waste cooking oil: A technological review. Chemical Engineering Journal, 233, 201–223.
Miao, X., & Wu, Q. (2006). Biodiesel production from heterotrophic microalgal oil. Bioresource
Technology, 97, 841–846.
Misra, R., Guldhe, A., Singh, P., Rawat, I., Stenstrom, T. A., & Bux, F. (2015). Evaluation of
operating conditions for sustainable harvesting of microalgal biomass applying electrochemical
method using non sacrificial electrodes. Bioresource Technology, 176, 1–7.
Olguín, E. J. (2012). Dual purpose microalgae-bacteria-based systems that treat wastewater and
produce biodiesel and chemical products within a biorefinery. Biotechnology Advances, 30,
1031–1046.
Park, K. Y., Kweon, J., Chantrasakdakul, P., Lee, K., & Cha, H. Y. (2013). Anaerobic digestion of
microalgal biomass with ultrasonic disintegration. International Biodeterioration &
Biodegradation, 85, 598–602.
Passos, F., Hernández-Mariné, M., García, J., Ferrer, I. (2014). Long-term anaerobic digestion of
microalgae grown in HRAP for wastewater treatment. Effect of microwave pretreatment. Water
Research, 49.
Passos, F., Sole, M., Garcia, J., & Ferrer, I. (2013). Biogas production from microalgae grown in
wastewater: Effect of microwave pretreatment. Applied Energy, 108, 168–175.
Patel, A., Gami, B., Patel, P., Patel, B. (2016). Microalgae: Antiquity to era of integrated
technology. Renewable and Sustainable Energy Reviews. https://doi.org/10.1016/j.rser.2016.
12.081.
Patil, P. D., Gude, V. G., Mannarswamy, A., Cooke, P., Munson-McGee, S., Nirmalakhandan, N.,
et al. (2011a). Optimization of microwave-assisted transesterification of dry algal biomass
using response surface methodology. Bioresource Technology, 102, 1399–1405.
Patil, P. D., Gude, V. G., Mannarswamy, A., Deng, S., Cooke, P., Munson-McGee, S., et al.
(2011b). Optimization of direct conversion of wet algae to biodiesel under supercritical
methanol conditions. Bioresource Technology, 102, 118–122.
4 Process Intensification of Biofuel Production …
85
biomass of Microcystis aeruginosa for efficient bioethanol production. AMB Express, 7, 19.
Kim, B., Im, H., & Lee, J. W. (2015). In situ transesterification of highly wet microalgae using
hydrochloric acid. Bioresource Technology, 185, 421–425.
Kim, J., Yoo, G., Lee, H., Lim, J., Kim, K., Kim, C. W., et al. (2013). Methods of downstream
processing for the production of biodiesel from microalgae. Biotechnology Advances, 31,
862–876.
Kraai, G. N., Schuur, B., van Zwol, F., van de Bovenkamp, H. H., Heeres, H. J. (2009). Novel
highly integrated biodiesel production technology in a centrifugal contactor separator device.
Chemical Engineering Journal, 154, 384–389. https://doi.org/10.1016/j.cej.2009.04.047.
Lee, Y., & Li, P. (2016). Using resonant ultrasound field-incorporated dynamic photobioreactor
system to enhance medium replacement process for concentrated microalgae cultivation in
continuous mode. Chemical Engineering Research and Design, 118, 112–120.
Lee, K. T., Lim, S., Pang, Y. L., Ong, H. C., & Chong, W. T. (2014). Integration of reactive
extraction with supercritical fluids for process intensification of biodiesel production: Prospects
and recent advances. Progress in Energy and Combustion Science, 45, 54–78.
Lee, J. Y., Yoo, C., Jun, S. Y., Ahn, C. Y., & Oh, H. M. (2010). Comparison of several methods
for effective lipid extraction from microalgae. Bioresource Technology, 101, S75–S77.
Li, Y., Chen, Y. F., Chen, P., Min, M., Zhou, W., Martinez, B., et al. (2011a). Characterization of
a microalga Chlorella sp. well adapted to highly concentrated municipal wastewater for
nutrient removal and biodiesel production. Bioresource Technology, 102, 5138–5144.
Li, Y., Lian, S., Tong, D., Song, R., Yang, W., Fan, Y., et al. (2011b). One-step production of
biodiesel from Nannochloropsis sp. on solid base Mg–Zr catalyst. Applied Energy, 88,
3313–3317.
Lu, W., Wang, Z., Wang, X., & Yuan, Z. (2015). Cultivation of Chlorella sp. using raw diary
wastewater for nutrient removal and biodiesel production: Characteristics comparison of indoor
bench-scale and outdoor pilot-scale cultures. Bioresource Technology, 192, 382–388.
Mazubert, A., Poux, M., & Aubin, J. (2013). Intensified processes for FAME production from
waste cooking oil: A technological review. Chemical Engineering Journal, 233, 201–223.
Miao, X., & Wu, Q. (2006). Biodiesel production from heterotrophic microalgal oil. Bioresource
Technology, 97, 841–846.
Misra, R., Guldhe, A., Singh, P., Rawat, I., Stenstrom, T. A., & Bux, F. (2015). Evaluation of
operating conditions for sustainable harvesting of microalgal biomass applying electrochemical
method using non sacrificial electrodes. Bioresource Technology, 176, 1–7.
Olguín, E. J. (2012). Dual purpose microalgae-bacteria-based systems that treat wastewater and
produce biodiesel and chemical products within a biorefinery. Biotechnology Advances, 30,
1031–1046.
Park, K. Y., Kweon, J., Chantrasakdakul, P., Lee, K., & Cha, H. Y. (2013). Anaerobic digestion of
microalgal biomass with ultrasonic disintegration. International Biodeterioration &
Biodegradation, 85, 598–602.
Passos, F., Hernández-Mariné, M., García, J., Ferrer, I. (2014). Long-term anaerobic digestion of
microalgae grown in HRAP for wastewater treatment. Effect of microwave pretreatment. Water
Research, 49.
Passos, F., Sole, M., Garcia, J., & Ferrer, I. (2013). Biogas production from microalgae grown in
wastewater: Effect of microwave pretreatment. Applied Energy, 108, 168–175.
Patel, A., Gami, B., Patel, P., Patel, B. (2016). Microalgae: Antiquity to era of integrated
technology. Renewable and Sustainable Energy Reviews. https://doi.org/10.1016/j.rser.2016.
12.081.
Patil, P. D., Gude, V. G., Mannarswamy, A., Cooke, P., Munson-McGee, S., Nirmalakhandan, N.,
et al. (2011a). Optimization of microwave-assisted transesterification of dry algal biomass
using response surface methodology. Bioresource Technology, 102, 1399–1405.
Patil, P. D., Gude, V. G., Mannarswamy, A., Deng, S., Cooke, P., Munson-McGee, S., et al.
(2011b). Optimization of direct conversion of wet algae to biodiesel under supercritical
methanol conditions. Bioresource Technology, 102, 118–122.
4 Process Intensification of Biofuel Production …
85