of biodiesel-derived crude glycerol. Industrial and Engineering
Chemistry Research, 55, 5536–5544. https://doi.org/10.1021/acs.
iecr.6b00500.
Akram, R., Khan, M. D., Zequine, C., Zhao, C., Gupta, R. K., Akhtar,
M., Akhtar, J., Malik, M. A., Revaprasadu, N., & Bhatti, M. H.
(2020). Cobalt sulfide nanoparticles: Synthesis, water splitting and
supercapacitance studies. Mater Sci Semicond Process,
109:104925. https://doi.org/10.1016/j.mssp.2020.104925.
Aldin, S., Elbeshbishy, E., Nakhla, G., & Ray, M. B. (2010). Modeling
the effect of sonication on the anaerobic digestion of biosolids.
Energy & Fuels, 24, 4703–4711. https://doi.org/10.1021/ef901255k
.
Allegue, L. D., Puyol, D., & Melero, J. A. (2020). Novel approach for
the treatment of the organic fraction of municipal solid waste:
Coupling thermal hydrolysis with anaerobic digestion and
photo-fermentation. Science of the Total Environment, 714,
136845. https://doi.org/10.1016/j.scitotenv.2020.136845.
Alternative Fuels Data Center. (2018). Global ethanol production. In
Altern. Fuels Data Cent. https://afdc.energy.gov/data/10331.
Amorim, H. V., Gryschek, M., & Lopes, M. L. (2010). The success and
sustainability of the Brazilian sugarcane-fuel ethanol industry. ACS
Symposium Series, 1058, 73–82. https://doi.org/10.1021/bk-20101058.ch005.
Angosto, J. M., Fernández-López, J. A., & Godínez, C. (2015).
Brewery and liquid manure wastewaters as potential feedstocks for
microbial fuel cells: A performance study. Environmental Technology (United Kingdom), 36, 68–78. https://doi.org/10.1080/
09593330.2014.937769.
Anukam, A., Mohammadi, A., Naqvi, M., & Granström, K. (2019).
A review of the chemistry of anaerobic digestion: Methods of
accelerating and optimizing process efficiency. Processes, 7, 504.
https://doi.org/10.3390/pr7080504.
Axelsson, L., Franzén, M., Ostwald, M., Berndes, G., Lakshmi, G., &
Ravindranath, N. H. (2012). Perspective: Jatropha cultivation in
southern India: Assessing farmers’ experiences. Biofuels, Bioprod
Biorefining, 6, 246–256. https://doi.org/10.1002/bbb.
Barakat, A., Mayer-Laigle, C., Solhy, A., Arancon, R. A. D., De Vries,
H., & Luque, R. (2014). Mechanical pretreatments of lignocellulosic biomass: Towards facile and environmentally sound technologies for biofuels production. RSC Advances, 4, 48109–48127.
https://doi.org/10.1039/c4ra07568d.
Baskar, G., & Soumiya, S. (2016). Production of biodiesel from castor
oil using iron (II) doped zinc oxide nanocatalyst. Renew Energy, 98,
101–107. https://doi.org/10.1016/j.renene.2016.02.068.
Beckers, L., Hiligsmann, S., Lambert, S. D., Heinrichs, B., & Thonart,
P. (2013). Improving effect of metal and oxide nanoparticles
encapsulated in porous silica on fermentative biohydrogen production by Clostridium butyricum. Bioresource Technology, 133, 109–
117. https://doi.org/10.1016/j.biortech.2012.12.168.
Ben, M., Kennes, C., & Veiga, M. C. (2016). Optimization of
polyhydroxyalkanoate storage using mixed cultures and brewery
wastewater. Journal of Chemical Technology and Biotechnology,
91, 2817–2826. https://doi.org/10.1002/jctb.4891.
Bhat, K. M., & Maheshwari, R. (1987). Sporotrichum thermophile
Growth, Cellulose Degradation, and Cellulase Activity. Applied and
Environmental Microbiology, 53, 2175–2182. https://doi.org/10.
1128/aem.53.9.2175-2182.1987.
Bhatia, S. K., Bhatia, R. K., Choi, Y. K., Kan, E., Kim, Y. G., & Yang,
Y. H. (2018). Biotechnological potential of microbial consortia and
future perspectives. Critical Reviews in Biotechnology, 38, 1209–
1229. https://doi.org/10.1080/07388551.2018.1471445.
Bilal, M., Asgher, M., Iqbal, H. M. N., & Ramzan, M. (2017).
Enhanced Bio-ethanol Production from Old Newspapers Waste
Through Alkali and Enzymatic Delignification. Waste and Biomass
Valorization, 8, 2271–2281. https://doi.org/10.1007/s12649-0179871-7.
Borja, R., Martín, A., Rincón, B., & Raposo, F. (2003). Kinetics for
substrate utilization and methane production during the mesophilic
anaerobic digestion of two phases olive pomace (TPOP). Journal of
Agricultural and Food Chemistry, 51, 3390–3395. https://doi.org/
10.1021/jf021059n.
Botella, C., Diaz, A., de Ory, I., Webb, C., & Blandino, A. (2007).
Xylanase and pectinase production by Aspergillus awamori on
grape pomace in solid state fermentation. Process Biochemistry, 42,
98–101. https://doi.org/10.1016/j.procbio.2006.06.025.
Breitenmoser, L., Dhar, H., Gross, T., Bakre, M., Huesch, R., Hugi, C.,
et al. (2018). Methane potential from municipal biowaste: Insights
from six communities in Maharashtra, India. Bioresource Technology, 254, 224–230. https://doi.org/10.1016/j.biortech.2018.01.074.
Bušić, A., Mardetko, N., Kundas, S., Morzak, G., Belskaya, H., Šantek,
M. I., Komes, D., Novak, S., & Šantek, B. (2018). Bioethanol
production from renewable raw materials and its separation and
purification: A review. Food Technology Biotechnology, 56:289–
311. https://doi.org/10.17113/ftb.56.03.18.5546.
Canilha, L., Chandel, A. K., Suzane Dos Santos Milessi, T., Antunes,
F. A. F., Luiz Da Costa Freitas, W., Das Graças Almeida Felipe, M.,
& Da Silva, S. S. (2012). Bioconversion of sugarcane biomass into
ethanol: An overview about composition, pretreatment methods,
detoxification of hydrolysates, enzymatic saccharification, and
ethanol fermentation. Journal of Biomedicine and Biotechnology
2012. https://doi.org/10.1155/2012/989572.
Cardoen, D., Joshi, P., Diels, L., Sarma, P. M., & Pant, D. (2015).
Agriculture biomass in India: Part 1 Estimation and characterization. Resources, Conservation and Recycling, 102, 39–48. https://
doi.org/10.1016/j.resconrec.2015.06.003.
Carta, F. S., Soccol, C. R., Ramos, L. P., & Fontana, J. D. (1999).
Production of fumaric acid by fermentation of enzymatic hydrolysates derived from cassava bagasse. Bioresource Technology, 68,
23–28. https://doi.org/10.1016/S0960-8524(98)00074-1.
Cavinato, C., Bolzonella, D., Fatone, F., Cecchi, F., & Pavan,
P. (2011). Optimization of two-phase thermophilic anaerobic
digestion of biowaste for hydrogen and methane production through
reject water recirculation. Bioresource Technology, 102, 8605–
8611. https://doi.org/10.1016/j.biortech.2011.03.084.
Cay, H., Duman, G., & Yanik, J. (2019). Two-step gasification of
biochar for hydrogen-rich gas production: effect of the biochar type
and catalyst. Energy & Fuels, 33, 7398–7405. https://doi.org/10.
1021/acs.energyfuels.9b01354.
Cerveró, J. M., Skovgaard, P. A., Felby, C., Sørensen, H. R., &
Jørgensen, H. (2010). Enzymatic hydrolysis and fermentation of
palm kernel press cake for production of bioethanol. Enzyme and
Microbial Technology, 46, 177–184. https://doi.org/10.1016/j.
enzmictec.2009.10.012.
Chalima, A., Oliver, L., De Castro, L. F., Karnaouri, A., Dietrich, T., &
Topakas, E. (2017). Utilization of volatile fatty acids from
microalgae for the production of high added value compounds.
Fermentation,
3,
1–17.
https://doi.org/10.3390/
fermentation3040054.
Chandel, A. K., da Silva, S. S., Carvalho, W., & Singh, O. V. (2012).
Sugarcane bagasse and leaves: Foreseeable biomass of biofuel and
bio-products. Journal of Chemical Technology and Biotechnology,
87, 11–20. https://doi.org/10.1002/jctb.2742.
Chen, X. Y., Vinh-Thang, H., Ramirez, A. A., Rodrigue, D., &
Kaliaguine, S. (2015). Membrane gas separation technologies for
biogas upgrading.
Chen, H., Shen, H., Su, H. F., Chen, H. Z., Tan, F. R., & Lin, J. F.
(2017). High-efficiency bioconversion of kitchen garbage to
biobutanol using an enzymatic cocktail procedure. Bioresource
Bioconversion of Biowastes for Energy Applications
15
Chemistry Research, 55, 5536–5544. https://doi.org/10.1021/acs.
iecr.6b00500.
Akram, R., Khan, M. D., Zequine, C., Zhao, C., Gupta, R. K., Akhtar,
M., Akhtar, J., Malik, M. A., Revaprasadu, N., & Bhatti, M. H.
(2020). Cobalt sulfide nanoparticles: Synthesis, water splitting and
supercapacitance studies. Mater Sci Semicond Process,
109:104925. https://doi.org/10.1016/j.mssp.2020.104925.
Aldin, S., Elbeshbishy, E., Nakhla, G., & Ray, M. B. (2010). Modeling
the effect of sonication on the anaerobic digestion of biosolids.
Energy & Fuels, 24, 4703–4711. https://doi.org/10.1021/ef901255k
.
Allegue, L. D., Puyol, D., & Melero, J. A. (2020). Novel approach for
the treatment of the organic fraction of municipal solid waste:
Coupling thermal hydrolysis with anaerobic digestion and
photo-fermentation. Science of the Total Environment, 714,
136845. https://doi.org/10.1016/j.scitotenv.2020.136845.
Alternative Fuels Data Center. (2018). Global ethanol production. In
Altern. Fuels Data Cent. https://afdc.energy.gov/data/10331.
Amorim, H. V., Gryschek, M., & Lopes, M. L. (2010). The success and
sustainability of the Brazilian sugarcane-fuel ethanol industry. ACS
Symposium Series, 1058, 73–82. https://doi.org/10.1021/bk-20101058.ch005.
Angosto, J. M., Fernández-López, J. A., & Godínez, C. (2015).
Brewery and liquid manure wastewaters as potential feedstocks for
microbial fuel cells: A performance study. Environmental Technology (United Kingdom), 36, 68–78. https://doi.org/10.1080/
09593330.2014.937769.
Anukam, A., Mohammadi, A., Naqvi, M., & Granström, K. (2019).
A review of the chemistry of anaerobic digestion: Methods of
accelerating and optimizing process efficiency. Processes, 7, 504.
https://doi.org/10.3390/pr7080504.
Axelsson, L., Franzén, M., Ostwald, M., Berndes, G., Lakshmi, G., &
Ravindranath, N. H. (2012). Perspective: Jatropha cultivation in
southern India: Assessing farmers’ experiences. Biofuels, Bioprod
Biorefining, 6, 246–256. https://doi.org/10.1002/bbb.
Barakat, A., Mayer-Laigle, C., Solhy, A., Arancon, R. A. D., De Vries,
H., & Luque, R. (2014). Mechanical pretreatments of lignocellulosic biomass: Towards facile and environmentally sound technologies for biofuels production. RSC Advances, 4, 48109–48127.
https://doi.org/10.1039/c4ra07568d.
Baskar, G., & Soumiya, S. (2016). Production of biodiesel from castor
oil using iron (II) doped zinc oxide nanocatalyst. Renew Energy, 98,
101–107. https://doi.org/10.1016/j.renene.2016.02.068.
Beckers, L., Hiligsmann, S., Lambert, S. D., Heinrichs, B., & Thonart,
P. (2013). Improving effect of metal and oxide nanoparticles
encapsulated in porous silica on fermentative biohydrogen production by Clostridium butyricum. Bioresource Technology, 133, 109–
117. https://doi.org/10.1016/j.biortech.2012.12.168.
Ben, M., Kennes, C., & Veiga, M. C. (2016). Optimization of
polyhydroxyalkanoate storage using mixed cultures and brewery
wastewater. Journal of Chemical Technology and Biotechnology,
91, 2817–2826. https://doi.org/10.1002/jctb.4891.
Bhat, K. M., & Maheshwari, R. (1987). Sporotrichum thermophile
Growth, Cellulose Degradation, and Cellulase Activity. Applied and
Environmental Microbiology, 53, 2175–2182. https://doi.org/10.
1128/aem.53.9.2175-2182.1987.
Bhatia, S. K., Bhatia, R. K., Choi, Y. K., Kan, E., Kim, Y. G., & Yang,
Y. H. (2018). Biotechnological potential of microbial consortia and
future perspectives. Critical Reviews in Biotechnology, 38, 1209–
1229. https://doi.org/10.1080/07388551.2018.1471445.
Bilal, M., Asgher, M., Iqbal, H. M. N., & Ramzan, M. (2017).
Enhanced Bio-ethanol Production from Old Newspapers Waste
Through Alkali and Enzymatic Delignification. Waste and Biomass
Valorization, 8, 2271–2281. https://doi.org/10.1007/s12649-0179871-7.
Borja, R., Martín, A., Rincón, B., & Raposo, F. (2003). Kinetics for
substrate utilization and methane production during the mesophilic
anaerobic digestion of two phases olive pomace (TPOP). Journal of
Agricultural and Food Chemistry, 51, 3390–3395. https://doi.org/
10.1021/jf021059n.
Botella, C., Diaz, A., de Ory, I., Webb, C., & Blandino, A. (2007).
Xylanase and pectinase production by Aspergillus awamori on
grape pomace in solid state fermentation. Process Biochemistry, 42,
98–101. https://doi.org/10.1016/j.procbio.2006.06.025.
Breitenmoser, L., Dhar, H., Gross, T., Bakre, M., Huesch, R., Hugi, C.,
et al. (2018). Methane potential from municipal biowaste: Insights
from six communities in Maharashtra, India. Bioresource Technology, 254, 224–230. https://doi.org/10.1016/j.biortech.2018.01.074.
Bušić, A., Mardetko, N., Kundas, S., Morzak, G., Belskaya, H., Šantek,
M. I., Komes, D., Novak, S., & Šantek, B. (2018). Bioethanol
production from renewable raw materials and its separation and
purification: A review. Food Technology Biotechnology, 56:289–
311. https://doi.org/10.17113/ftb.56.03.18.5546.
Canilha, L., Chandel, A. K., Suzane Dos Santos Milessi, T., Antunes,
F. A. F., Luiz Da Costa Freitas, W., Das Graças Almeida Felipe, M.,
& Da Silva, S. S. (2012). Bioconversion of sugarcane biomass into
ethanol: An overview about composition, pretreatment methods,
detoxification of hydrolysates, enzymatic saccharification, and
ethanol fermentation. Journal of Biomedicine and Biotechnology
2012. https://doi.org/10.1155/2012/989572.
Cardoen, D., Joshi, P., Diels, L., Sarma, P. M., & Pant, D. (2015).
Agriculture biomass in India: Part 1 Estimation and characterization. Resources, Conservation and Recycling, 102, 39–48. https://
doi.org/10.1016/j.resconrec.2015.06.003.
Carta, F. S., Soccol, C. R., Ramos, L. P., & Fontana, J. D. (1999).
Production of fumaric acid by fermentation of enzymatic hydrolysates derived from cassava bagasse. Bioresource Technology, 68,
23–28. https://doi.org/10.1016/S0960-8524(98)00074-1.
Cavinato, C., Bolzonella, D., Fatone, F., Cecchi, F., & Pavan,
P. (2011). Optimization of two-phase thermophilic anaerobic
digestion of biowaste for hydrogen and methane production through
reject water recirculation. Bioresource Technology, 102, 8605–
8611. https://doi.org/10.1016/j.biortech.2011.03.084.
Cay, H., Duman, G., & Yanik, J. (2019). Two-step gasification of
biochar for hydrogen-rich gas production: effect of the biochar type
and catalyst. Energy & Fuels, 33, 7398–7405. https://doi.org/10.
1021/acs.energyfuels.9b01354.
Cerveró, J. M., Skovgaard, P. A., Felby, C., Sørensen, H. R., &
Jørgensen, H. (2010). Enzymatic hydrolysis and fermentation of
palm kernel press cake for production of bioethanol. Enzyme and
Microbial Technology, 46, 177–184. https://doi.org/10.1016/j.
enzmictec.2009.10.012.
Chalima, A., Oliver, L., De Castro, L. F., Karnaouri, A., Dietrich, T., &
Topakas, E. (2017). Utilization of volatile fatty acids from
microalgae for the production of high added value compounds.
Fermentation,
3,
1–17.
https://doi.org/10.3390/
fermentation3040054.
Chandel, A. K., da Silva, S. S., Carvalho, W., & Singh, O. V. (2012).
Sugarcane bagasse and leaves: Foreseeable biomass of biofuel and
bio-products. Journal of Chemical Technology and Biotechnology,
87, 11–20. https://doi.org/10.1002/jctb.2742.
Chen, X. Y., Vinh-Thang, H., Ramirez, A. A., Rodrigue, D., &
Kaliaguine, S. (2015). Membrane gas separation technologies for
biogas upgrading.
Chen, H., Shen, H., Su, H. F., Chen, H. Z., Tan, F. R., & Lin, J. F.
(2017). High-efficiency bioconversion of kitchen garbage to
biobutanol using an enzymatic cocktail procedure. Bioresource
Bioconversion of Biowastes for Energy Applications
15
