Richardson, Y., Drobek, M., Julbe, A., Blin, J., & Pinta, F. (2015).
Biomass gasification to produce syngas.
Robinson, T., & Nigam, P. S. (2008). Remediation of textile dye waste
water using a white-rot fungus Bjerkandera adusta through solid-state
fermentation (SSF). Biotechnology and Applied Biochemistry, 151,
618–628. https://doi.org/10.1007/s12010-008-8272-6.
Román Galdámez, J., García, L., & Bilbao, R. (2005). Hydrogen
production by steam reforming of bio-oil using coprecipitated Ni–
Al catalysts. Acetic acid as a model compound. Energy & Fuels, 19,
1133–1142. https://doi.org/10.1021/ef049718g.
Rubin, E. M. (2008). Genomics of cellulosic biofuels. Nature, 454,
841–845. https://doi.org/10.1038/nature07190.
Ruiz, H. A., Martínez, A., & Vermerris, W. (2016). Bioenergy
potential, energy crops, and Biofuel production in Mexico.
BioEnergy Research, 9, 981–984. https://doi.org/10.1007/s12155016-9802-7.
Sadeghinezhad, E., Kazi, S. N., Badarudin, A., Togun, H., Zubir, M.
N. M., Oon, C. S., et al. (2014). Sustainability and environmental
impact of ethanol as a biofuel. Reviews in Chemical Engineering,
30, 51–72. https://doi.org/10.1515/revce-2013-0024.
Salem, A. H., Mietzel, T., Brunstermann, R., & Widmann, R. (2017).
Effect of cell immobilization, hematite nanoparticles and formation
of hydrogen-producing granules on biohydrogen production from
sucrose wastewater. International Journal of Hydrogen Energy, 42,
25225–25233. https://doi.org/10.1016/j.ijhydene.2017.08.060.
Sánchez, Ó. J., Ospina, D. A., & Montoya, S. (2017). Compost
supplementation with nutrients and microorganisms in composting
process. Waste Management, 69, 136–153. https://doi.org/10.1016/
j.wasman.2017.08.012.
Santín, C., Doerr, S. H., Merino, A., Bucheli, T. D., Bryant, R.,
Ascough, P., et al. (2017). Carbon sequestration potential and
physicochemical properties differ between wildfire charcoals and
slow-pyrolysis biochars. Scientific Reports, 7, 1–11. https://doi.org/
10.1038/s41598-017-10455-2.
Sarsaiya, S., Jain, A., Kumar Awasthi, S., Duan, Y., Kumar
Awasthi M., & Shi, J. (2019) Microbial dynamics for lignocellulosic waste bioconversion and its importance with modern circular
economy, challenges and future perspectives. Bioresource Technology 291. https://doi.org/10.1016/j.biortech.2019.121905.
Sayed, W., Cabrol, A., Abdallah, R., Taha, S., Amrane, A., & Djelal,
H. (2018). Enhancement of ethanol production from synthetic
medium model of hydrolysate of macroalgae. Renewable Energy,
124, 3–10. https://doi.org/10.1016/j.renene.2017.10.094.
Schieber, A. (2017). Side streams of plant food processing as a source
of valuable compounds: Selected examples. The Annual Review of
Food Science and Technology, 8, 97–112. https://doi.org/10.1146/
annurev-food-030216-030135.
Schuerg, T., Prahl, J. P., Gabriel, R., Harth, S., Tachea, F., Chen, C. S.,
et al. (2017). Xylose induces cellulase production in Thermoascus
aurantiacus. Biotechnology for Biofuels, 10, 1–11. https://doi.org/
10.1186/s13068-017-0965-z.
Scientific, E., Company, P., Wise, D. L., Kispert, R. G., & Langton, E.
W. (1981). A Review of Bioconversion, 6, 117–136.
Selim, K. A., El-Ghwas, D. E., Easa, S. M., & Abdelwahab Hassan, M.
I. (2018). Bioethanol a microbial biofuel metabolite; New insights
of yeasts metabolic engineering. Fermentation 4. https://doi.org/10.
3390/fermentation4010016.
Shuttleworth, P. S., De Bruyn, M., Parker, H. L., Hunt, A. J., Budarin,
V. L., Matharu, A. S., et al. (2014). Applications of nanoparticles in
biomass conversion to chemicals and fuels. Green Chemistry, 16,
573–584. https://doi.org/10.1039/c3gc41555d.
Singh, B. (2016). Myceliophthora thermophila syn. Sporotrichum
thermophile: A thermophilic mould of biotechnological potential.
Critical Reviews in Biotechnology, 36, 59–69. https://doi.org/10.
3109/07388551.2014.923985.
Singh, D., Dahiya, J. S., & Nigam, P. (1995). Simultaneous raw starch
hydrolysis and ethanol fermentation by glucoamylase from Rhizoctonia solani and Saccharomyces cerevisiae. Journal of Basic
Microbiology,
35,
117–121.
https://doi.org/10.1002/jobm.
3620350209.
Singh, P. K., Verma, S. K., Ojha, S. K., Panda, P. K., Srichandan, H.,
Jha, E., et al. (2019). Intrinsic molecular insights to enhancement of
biogas production from kitchen refuse using alkaline-microwave
pretreatment. Scientific Reports, 9, 1–12. https://doi.org/10.1038/
s41598-019-42471-9.
Sivaramakrishnan, S., Gangadharan, D., Nampoothiri, K. M., Soccol,
C. R., & Pandey, A. (2006). a-Amylases from microbial sources—
An overview on recent developments. Food Technology and
Biotechnology, 44, 173–184.
Smoliński, A., Karwot, J., Bondaruk, J., & Bak, A. (2019). The
bioconversion of sewage sludge to bio-fuel: The environmental and
economic benefits. Materials (Basel), 12, 1–9. https://doi.org/10.
3390/ma12152417.
Sobieszuk, P., Zamojska-Jaroszewicz, A., & Kołtuniewicz, A. (2012).
Harvesting energy and hydrogen from microbes. Chem Process
Engineering—Inz Chemistry i Process, 33, 603–610. https://doi.org/
10.2478/v10176-012-0050-x.
Sobieszuk, P., Zamojska-Jaroszewicz, A., & Makowski, Ł. (2017).
Influence of the operational parameters on bioelectricity generation
in continuous microbial fuel cell, experimental and computational
fluid dynamics modelling. Journal of Power Sources, 371, 178–
187. https://doi.org/10.1016/j.jpowsour.2017.10.032.
Sparrevik, M., Lindhjem, H., Andria, V., Fet, A. M., & Cornelissen, G.
(2014). Environmental and socioeconomic impacts of utilizing
waste for biochar in rural areas in indonesia-a systems perspective.
Environmental Science and Technology, 48, 4664–4671. https://doi.
org/10.1021/es405190q.
Srirangan, K., Akawi, L., Moo-Young, M., & Chou, C. P. (2012).
Towards sustainable production of clean energy carriers from
biomass resources. Applied Energy, 100, 172–186. https://doi.org/
10.1016/j.apenergy.2012.05.012.
Steubing, B., Zah, R., & Ludwig, C. (2012). Heat, electricity, or
transportation? the optimal use of residual and waste biomass in
Europe from an environmental perspective. Environmental Science
and Technology, 46, 164–171. https://doi.org/10.1021/es202154k.
Sugumaran, K. R., Jothi, P., & Ponnusami, V. (2014). Bioconversion of
industrial solid waste - Cassava bagasse for pullulan production in
solid state fermentation. Carbohydrate Polymers, 99, 22–30. https://
doi.org/10.1016/j.carbpol.2013.08.039.
Taghizadeh-Alisaraei, A., Hosseini, S. H., Ghobadian, B., & Motevali,
A. (2017). Biofuel production from citrus wastes: A feasibility
study in Iran. Renewable and Sustainable Energy Reviews, 69,
1100–1112. https://doi.org/10.1016/j.rser.2016.09.102.
Taherdanak, M., Zilouei, H., & Karimi, K. (2015). Investigating the
effects of iron and nickel nanoparticles on dark hydrogen fermentation from starch using central composite design. International
Journal of Hydrogen Energy, 40, 12956–12963. https://doi.org/10.
1016/j.ijhydene.2015.08.004.
Tan, L., Sun, Z. Y., Okamoto, S., Takaki, M., Tang, Y. Q., Morimura,
S., et al. (2015). Production of ethanol from raw juice and thick
juice of sugar beet by continuous ethanol fermentation with
flocculating yeast strain KF-7. Biomass and Bioenergy, 81, 265–
272. https://doi.org/10.1016/j.biombioe.2015.07.019.
Tan, X. B., Lam, M. K., Uemura, Y., Lim, J. W., Wong, C. Y., & Lee,
K. T. (2018). Cultivation of microalgae for biodiesel production: A
review on upstream and downstream processing. The Chinese
Journal of Chemical Engineering, 26, 17–30. https://doi.org/10.
1016/j.cjche.2017.08.010.
Terrell, E., & Theegala, C. S. (2019). Thermodynamic simulation of
syngas production through combined biomass gasification and
20
A. M. Palve et al.
Biomass gasification to produce syngas.
Robinson, T., & Nigam, P. S. (2008). Remediation of textile dye waste
water using a white-rot fungus Bjerkandera adusta through solid-state
fermentation (SSF). Biotechnology and Applied Biochemistry, 151,
618–628. https://doi.org/10.1007/s12010-008-8272-6.
Román Galdámez, J., García, L., & Bilbao, R. (2005). Hydrogen
production by steam reforming of bio-oil using coprecipitated Ni–
Al catalysts. Acetic acid as a model compound. Energy & Fuels, 19,
1133–1142. https://doi.org/10.1021/ef049718g.
Rubin, E. M. (2008). Genomics of cellulosic biofuels. Nature, 454,
841–845. https://doi.org/10.1038/nature07190.
Ruiz, H. A., Martínez, A., & Vermerris, W. (2016). Bioenergy
potential, energy crops, and Biofuel production in Mexico.
BioEnergy Research, 9, 981–984. https://doi.org/10.1007/s12155016-9802-7.
Sadeghinezhad, E., Kazi, S. N., Badarudin, A., Togun, H., Zubir, M.
N. M., Oon, C. S., et al. (2014). Sustainability and environmental
impact of ethanol as a biofuel. Reviews in Chemical Engineering,
30, 51–72. https://doi.org/10.1515/revce-2013-0024.
Salem, A. H., Mietzel, T., Brunstermann, R., & Widmann, R. (2017).
Effect of cell immobilization, hematite nanoparticles and formation
of hydrogen-producing granules on biohydrogen production from
sucrose wastewater. International Journal of Hydrogen Energy, 42,
25225–25233. https://doi.org/10.1016/j.ijhydene.2017.08.060.
Sánchez, Ó. J., Ospina, D. A., & Montoya, S. (2017). Compost
supplementation with nutrients and microorganisms in composting
process. Waste Management, 69, 136–153. https://doi.org/10.1016/
j.wasman.2017.08.012.
Santín, C., Doerr, S. H., Merino, A., Bucheli, T. D., Bryant, R.,
Ascough, P., et al. (2017). Carbon sequestration potential and
physicochemical properties differ between wildfire charcoals and
slow-pyrolysis biochars. Scientific Reports, 7, 1–11. https://doi.org/
10.1038/s41598-017-10455-2.
Sarsaiya, S., Jain, A., Kumar Awasthi, S., Duan, Y., Kumar
Awasthi M., & Shi, J. (2019) Microbial dynamics for lignocellulosic waste bioconversion and its importance with modern circular
economy, challenges and future perspectives. Bioresource Technology 291. https://doi.org/10.1016/j.biortech.2019.121905.
Sayed, W., Cabrol, A., Abdallah, R., Taha, S., Amrane, A., & Djelal,
H. (2018). Enhancement of ethanol production from synthetic
medium model of hydrolysate of macroalgae. Renewable Energy,
124, 3–10. https://doi.org/10.1016/j.renene.2017.10.094.
Schieber, A. (2017). Side streams of plant food processing as a source
of valuable compounds: Selected examples. The Annual Review of
Food Science and Technology, 8, 97–112. https://doi.org/10.1146/
annurev-food-030216-030135.
Schuerg, T., Prahl, J. P., Gabriel, R., Harth, S., Tachea, F., Chen, C. S.,
et al. (2017). Xylose induces cellulase production in Thermoascus
aurantiacus. Biotechnology for Biofuels, 10, 1–11. https://doi.org/
10.1186/s13068-017-0965-z.
Scientific, E., Company, P., Wise, D. L., Kispert, R. G., & Langton, E.
W. (1981). A Review of Bioconversion, 6, 117–136.
Selim, K. A., El-Ghwas, D. E., Easa, S. M., & Abdelwahab Hassan, M.
I. (2018). Bioethanol a microbial biofuel metabolite; New insights
of yeasts metabolic engineering. Fermentation 4. https://doi.org/10.
3390/fermentation4010016.
Shuttleworth, P. S., De Bruyn, M., Parker, H. L., Hunt, A. J., Budarin,
V. L., Matharu, A. S., et al. (2014). Applications of nanoparticles in
biomass conversion to chemicals and fuels. Green Chemistry, 16,
573–584. https://doi.org/10.1039/c3gc41555d.
Singh, B. (2016). Myceliophthora thermophila syn. Sporotrichum
thermophile: A thermophilic mould of biotechnological potential.
Critical Reviews in Biotechnology, 36, 59–69. https://doi.org/10.
3109/07388551.2014.923985.
Singh, D., Dahiya, J. S., & Nigam, P. (1995). Simultaneous raw starch
hydrolysis and ethanol fermentation by glucoamylase from Rhizoctonia solani and Saccharomyces cerevisiae. Journal of Basic
Microbiology,
35,
117–121.
https://doi.org/10.1002/jobm.
3620350209.
Singh, P. K., Verma, S. K., Ojha, S. K., Panda, P. K., Srichandan, H.,
Jha, E., et al. (2019). Intrinsic molecular insights to enhancement of
biogas production from kitchen refuse using alkaline-microwave
pretreatment. Scientific Reports, 9, 1–12. https://doi.org/10.1038/
s41598-019-42471-9.
Sivaramakrishnan, S., Gangadharan, D., Nampoothiri, K. M., Soccol,
C. R., & Pandey, A. (2006). a-Amylases from microbial sources—
An overview on recent developments. Food Technology and
Biotechnology, 44, 173–184.
Smoliński, A., Karwot, J., Bondaruk, J., & Bak, A. (2019). The
bioconversion of sewage sludge to bio-fuel: The environmental and
economic benefits. Materials (Basel), 12, 1–9. https://doi.org/10.
3390/ma12152417.
Sobieszuk, P., Zamojska-Jaroszewicz, A., & Kołtuniewicz, A. (2012).
Harvesting energy and hydrogen from microbes. Chem Process
Engineering—Inz Chemistry i Process, 33, 603–610. https://doi.org/
10.2478/v10176-012-0050-x.
Sobieszuk, P., Zamojska-Jaroszewicz, A., & Makowski, Ł. (2017).
Influence of the operational parameters on bioelectricity generation
in continuous microbial fuel cell, experimental and computational
fluid dynamics modelling. Journal of Power Sources, 371, 178–
187. https://doi.org/10.1016/j.jpowsour.2017.10.032.
Sparrevik, M., Lindhjem, H., Andria, V., Fet, A. M., & Cornelissen, G.
(2014). Environmental and socioeconomic impacts of utilizing
waste for biochar in rural areas in indonesia-a systems perspective.
Environmental Science and Technology, 48, 4664–4671. https://doi.
org/10.1021/es405190q.
Srirangan, K., Akawi, L., Moo-Young, M., & Chou, C. P. (2012).
Towards sustainable production of clean energy carriers from
biomass resources. Applied Energy, 100, 172–186. https://doi.org/
10.1016/j.apenergy.2012.05.012.
Steubing, B., Zah, R., & Ludwig, C. (2012). Heat, electricity, or
transportation? the optimal use of residual and waste biomass in
Europe from an environmental perspective. Environmental Science
and Technology, 46, 164–171. https://doi.org/10.1021/es202154k.
Sugumaran, K. R., Jothi, P., & Ponnusami, V. (2014). Bioconversion of
industrial solid waste - Cassava bagasse for pullulan production in
solid state fermentation. Carbohydrate Polymers, 99, 22–30. https://
doi.org/10.1016/j.carbpol.2013.08.039.
Taghizadeh-Alisaraei, A., Hosseini, S. H., Ghobadian, B., & Motevali,
A. (2017). Biofuel production from citrus wastes: A feasibility
study in Iran. Renewable and Sustainable Energy Reviews, 69,
1100–1112. https://doi.org/10.1016/j.rser.2016.09.102.
Taherdanak, M., Zilouei, H., & Karimi, K. (2015). Investigating the
effects of iron and nickel nanoparticles on dark hydrogen fermentation from starch using central composite design. International
Journal of Hydrogen Energy, 40, 12956–12963. https://doi.org/10.
1016/j.ijhydene.2015.08.004.
Tan, L., Sun, Z. Y., Okamoto, S., Takaki, M., Tang, Y. Q., Morimura,
S., et al. (2015). Production of ethanol from raw juice and thick
juice of sugar beet by continuous ethanol fermentation with
flocculating yeast strain KF-7. Biomass and Bioenergy, 81, 265–
272. https://doi.org/10.1016/j.biombioe.2015.07.019.
Tan, X. B., Lam, M. K., Uemura, Y., Lim, J. W., Wong, C. Y., & Lee,
K. T. (2018). Cultivation of microalgae for biodiesel production: A
review on upstream and downstream processing. The Chinese
Journal of Chemical Engineering, 26, 17–30. https://doi.org/10.
1016/j.cjche.2017.08.010.
Terrell, E., & Theegala, C. S. (2019). Thermodynamic simulation of
syngas production through combined biomass gasification and
20
A. M. Palve et al.
