Microalgae Chlorella as a Sustainable Feedstock …
101
Harun, R., & Danquah, M. K. (2011b). Influence of acid pre-treatment on microalgal biomass for
bioethanol production. Process Biochemistry, 46(1), 304–309.
Held, P. (2010). Monitoring growth of beer brewing strains of Saccharomyces cerevisiae. http://
www.biotek.com/assets/tech_resources/SynergyH1_Yeast_Growth_App_Note.pdf.
Hernández, D., Riaño, B., Coca, M., & García-González, M. C. (2015). Saccharification of carbohydrates in microalgal biomass by physical, chemical and enzymatic pre-treatments as a previous
step for bioethanol production. Chemical Engineering Journal, 262, 939–945.
Ho, S., Huang, S., Chen, C., Hasunuma, T., Kondo, A., & Chang, J. (2013a). Bioethanol production
using carbohydrate-rich microalgae biomass as feedstock. Bioresource Technology, 135, 191–198.
Ho, S., Li, P., Liu, C., & Chang, J. (2013b). Bioprocess development on microalgae-based CO 2 fixation and bioethanol production using Scenedesmus obliquus CNW-N. Bioresource Technology,
145, 142–149.
Ho, S., Ye, X., Hasunnuma, T., Chang, J., & Kondo, A. (2014). Perspectives on engineering strategies
for improving biofuel production from microalgae–A critical review. Biotechnology Advances,
32, 1448–1459.
Hong, L. S., Ibrahim, D., & Omar, I. C. (2013). Effect of physical parameters on second generation
bio-ethanol production from oil palm frond by Saccharomyces cerevisiae. BioResources, 8(1),
969–980.
John, R. P., Anisha, G. S., Nampoothiri, K. M., & Pandey, A. (2011). Micro and macroalgal biomass:
a renewable source for bioethanol. Bioresource Technology, 102, 186–193.
Jambo, S. A., Abdulla, R. Mohd, Azhar, S. H., Marbawi, H., Gansau, J. A., & Ravindra, P. (2016).
A review on third generation bioethanol feedstock. Renewable and Sustainable Energy Reviews,
65, 756–769.
Kim, H., Ra, C. H., & Kim, S. (2013). Ethanol production from seaweed (Undaria pinnatifida) using
yeast acclimated to specific sugars. Biotechnology and Bioprocess Engineering, 18, 533–537.
Kirrolia, A., Bishnoi, N. R., & Singh, R. (2013). Microalgae as a boon for sustainable energy
production and its future research and development aspects. Renewable and Sustainable Energy
Reviews, 20, 642–656.
Kiran, B., Kumar, R., & Deshmukh, D. (2014). Perspectives of microalgal biofuels as a renewable
source of energy. Energy Conversion and Management, 88, 1228–1244.
Klein, B. C., Chagas, M. F., Junqueira, T. L., Rezende, M. C. A. F., Cardos, T. F., Cavalett, O.,
et al. (2018). Techno-economic and environmental assessment of renewable jet fuel production
in integrated Brazilian sugarcane biorefineries. Applied Energy, 209, 290–305.
Laopaiboon, P., Thani, A., Leelavatcharamas, V., & Laopaiboon, L. (2009). Acid hydrolysis of
sugarcane bagasse for lactic acid production. Bioresources Techonology, 101(3), 1036–1043.
Lange, N., & Steinbüchel, A. (2011). B-carotene production by Saccharomyces cerevisiae with
regard to plasmid stability and culture media. Applied Microbiology and Biotechnology, 91,
1611–1622.
Lee, C. G., Choi, W. Y., Kang, D. H., & Lee, H. Y. (2014). Simultaneous production of biodiesel
and bioethanol through mixotropic cultivation of Chlorella sp., Indian J Geo-Marine Sci, 43(10),
519–528.
Leupold, M., Hindersin, S., Gust, G., Kerner, M., & Hanelt, D. (2013). Influence of mixing and shear
stress on Chlorella vulgaris, Scenedesmus obliquus, and Chlamydomonas reinhardtii. Journal of
Applied Phycology, 25, 485–495.
Liu, G., Qiao, L., Zhang, H., Zhao, D., & Su, X. (2014a). The effects of illumination factors on the
growth and HCO -
3 fixation of microalgae in an experiment culture system. Energy, 78, 40–47.
Liu, J., Sun, Z., & Gerken, H. (Eds.). (2014b). Recent Advances in Microalgal Biotechnology. USA:
OMICS Group.
Makareviˇ cien˙ e, V., Andruleviˇ ci¯ ut˙ e, V., Skorupskait˙ e, V., & Kasperoviˇ cien˙ e, J. (2011). Cultivation of
microalgae Chlorella sp. and Scenedesmus sp. as a potentional biofuel feedstock. Environmental
Research, Engineering and Management, 3(57), 21–27.
101
Harun, R., & Danquah, M. K. (2011b). Influence of acid pre-treatment on microalgal biomass for
bioethanol production. Process Biochemistry, 46(1), 304–309.
Held, P. (2010). Monitoring growth of beer brewing strains of Saccharomyces cerevisiae. http://
www.biotek.com/assets/tech_resources/SynergyH1_Yeast_Growth_App_Note.pdf.
Hernández, D., Riaño, B., Coca, M., & García-González, M. C. (2015). Saccharification of carbohydrates in microalgal biomass by physical, chemical and enzymatic pre-treatments as a previous
step for bioethanol production. Chemical Engineering Journal, 262, 939–945.
Ho, S., Huang, S., Chen, C., Hasunuma, T., Kondo, A., & Chang, J. (2013a). Bioethanol production
using carbohydrate-rich microalgae biomass as feedstock. Bioresource Technology, 135, 191–198.
Ho, S., Li, P., Liu, C., & Chang, J. (2013b). Bioprocess development on microalgae-based CO 2 fixation and bioethanol production using Scenedesmus obliquus CNW-N. Bioresource Technology,
145, 142–149.
Ho, S., Ye, X., Hasunnuma, T., Chang, J., & Kondo, A. (2014). Perspectives on engineering strategies
for improving biofuel production from microalgae–A critical review. Biotechnology Advances,
32, 1448–1459.
Hong, L. S., Ibrahim, D., & Omar, I. C. (2013). Effect of physical parameters on second generation
bio-ethanol production from oil palm frond by Saccharomyces cerevisiae. BioResources, 8(1),
969–980.
John, R. P., Anisha, G. S., Nampoothiri, K. M., & Pandey, A. (2011). Micro and macroalgal biomass:
a renewable source for bioethanol. Bioresource Technology, 102, 186–193.
Jambo, S. A., Abdulla, R. Mohd, Azhar, S. H., Marbawi, H., Gansau, J. A., & Ravindra, P. (2016).
A review on third generation bioethanol feedstock. Renewable and Sustainable Energy Reviews,
65, 756–769.
Kim, H., Ra, C. H., & Kim, S. (2013). Ethanol production from seaweed (Undaria pinnatifida) using
yeast acclimated to specific sugars. Biotechnology and Bioprocess Engineering, 18, 533–537.
Kirrolia, A., Bishnoi, N. R., & Singh, R. (2013). Microalgae as a boon for sustainable energy
production and its future research and development aspects. Renewable and Sustainable Energy
Reviews, 20, 642–656.
Kiran, B., Kumar, R., & Deshmukh, D. (2014). Perspectives of microalgal biofuels as a renewable
source of energy. Energy Conversion and Management, 88, 1228–1244.
Klein, B. C., Chagas, M. F., Junqueira, T. L., Rezende, M. C. A. F., Cardos, T. F., Cavalett, O.,
et al. (2018). Techno-economic and environmental assessment of renewable jet fuel production
in integrated Brazilian sugarcane biorefineries. Applied Energy, 209, 290–305.
Laopaiboon, P., Thani, A., Leelavatcharamas, V., & Laopaiboon, L. (2009). Acid hydrolysis of
sugarcane bagasse for lactic acid production. Bioresources Techonology, 101(3), 1036–1043.
Lange, N., & Steinbüchel, A. (2011). B-carotene production by Saccharomyces cerevisiae with
regard to plasmid stability and culture media. Applied Microbiology and Biotechnology, 91,
1611–1622.
Lee, C. G., Choi, W. Y., Kang, D. H., & Lee, H. Y. (2014). Simultaneous production of biodiesel
and bioethanol through mixotropic cultivation of Chlorella sp., Indian J Geo-Marine Sci, 43(10),
519–528.
Leupold, M., Hindersin, S., Gust, G., Kerner, M., & Hanelt, D. (2013). Influence of mixing and shear
stress on Chlorella vulgaris, Scenedesmus obliquus, and Chlamydomonas reinhardtii. Journal of
Applied Phycology, 25, 485–495.
Liu, G., Qiao, L., Zhang, H., Zhao, D., & Su, X. (2014a). The effects of illumination factors on the
growth and HCO -
3 fixation of microalgae in an experiment culture system. Energy, 78, 40–47.
Liu, J., Sun, Z., & Gerken, H. (Eds.). (2014b). Recent Advances in Microalgal Biotechnology. USA:
OMICS Group.
Makareviˇ cien˙ e, V., Andruleviˇ ci¯ ut˙ e, V., Skorupskait˙ e, V., & Kasperoviˇ cien˙ e, J. (2011). Cultivation of
microalgae Chlorella sp. and Scenedesmus sp. as a potentional biofuel feedstock. Environmental
Research, Engineering and Management, 3(57), 21–27.
