References
Abdullah, M. A., & Hussein, H. A. (2020). Integrated algal biorefinery
and palm oil milling for bioenergy, biomaterials and biopharmaceuticals. IOP Conference Series: Earth and Environmental
Science, 463, 012084.
Alahyaribeik, S., Sharifi, S. D., et al. (2020). Bioconversion of chicken
feather wastes by keratinolytic bacteria. Process Safety and
Environmental Protection, 135, 171–178.
Alcántara, J. C., & González, I., et al. (2020). Biocomposites from rice
straw Nanofibers: Morphology, thermal and mechanical properties.
Materials (Basel), 13, 2138.
Al-Haj Ibrahim, H. (2018). Bio-energy production from rice straw a
review. Recent Advances in Petrochemical Science, 5.
Alizadeh, H., Teymouri, F., et al. (2005). Pretreatment of switchgrass
by ammonia fiber explosion (AFEX). In Twenty-Sixth Symposium
on Biotechnology for Fuels and Chemicals, pp. 1133–1141,
Humana Press, Totowa, NJ, 2005.
Andlar, M., Rezić, T., et al. (2018). Lignocellulose degradation: An
overview of fungi and fungal enzymes involved in lignocellulose
degradation, 18, 768–778.
Arellano-Garcia, H., Ketabchi, E., & Ramirez Reina, T. (2017).
Integration of bio-refinery concepts in oil refineries. In Computer
Aided Chemical Engineering, pp. 829–834, Elsevier.
Bageru, A. B., & Srivastava, V. C. (2019). Efficient teff-straw based
biocomposites with chitosan and alginate for pyridine removal.
International Journal of Environmental Science and Technology,
16, 5757–5766.
Ballesteros, I., & Negro, M. J., et al. (2006). Ethanol production from
steam-explosion pretreated wheat straw. In Twenty-Seventh Symposium on Biotechnology for Fuels and Chemicals, pp. 496–508,
Humana Press, Totowa, NJ.
Batog, J., Kozlowski, R., & Przepiera, A. (2008). Lignocellulosic
composites bonded by enzymatic oxidation of lignin. Molecular
Crystals and Liquid Crystals, 484, 35/[401–42/[408].
Belal, E. B. (2013). Bioethanol production from rice straw residues.
The Brazilian Journal of Microbiology, 44, 225–234.
Biddy, M. J., Davis, R., et al. (2016). The techno-economic basis for
coproduct manufacturing to enable hydrocarbon fuel production
from lignocellulosic biomass. ACS Sustainable Chemistry &
Engineering, 4, 3196–3211.
Biernat, K., & Grzelak, P. L. (2015). Biorefinery systems as an element
of sustainable development. J Biofuels–Status Perspective.
Blomqvist, J., South, E., et al. (2011). Fermentation of lignocellulosic
hydrolysate by the alternative industrial ethanol yeast Dekkera
bruxellensis. Letters in Applied Microbiology, 53, 73–78.
Brandenburg, J., Poppele, I., et al. (2018). Bioethanol and lipid
production from the enzymatic hydrolysate of wheat straw after
furfural extraction. Applied Microbiology and Biotechnology, 102,
6269–6277.
Brown, M., & Chang, M. (2014). Exploring bacterial lignin degradation. Current Opinion in Chemical Biology, 19C, 1–7.
Buranov, A. U., & Mazza, G. (2008). Lignin in straw of herbaceous
crops. Industrial Crops and Products, 28, 237–259.
Burgard, A., Burk, M. J., et al. (2016). Development of a commercial
scale process for production of 1,4-butanediol from sugar. Current
Opinion in Biotechnology, 42, 118–125.
Chahal, P. S., & Chahal, D. S. (1998). Lignocellulosic wastes:
Biological conversion. In Bioconversion of Waste Materials to
Industrial Products, pp. 376–422, Springer US, Boston, MA.
Charnnok, B., Sakdaronnarong, C., & Sinbuathong, N. (2019).
Hydrothermal pretreatment with sulfonated bentonite catalyst
enhances potassium removal and bioconversion of oil palm empty
fruit bunch to sugar and biohydrogen. Biomass Conversion and
Biorefinery, 9, 389–399.
Cheah, W. Y., & Sankaran, R., et al. (2020). Pretreatment methods for
lignocellulosic biofuels production: Current advances, challenges
and future prospects %J Biofuel Research Journal 7, 1115–1127.
Chen, S., Zhang, X., et al. (2010). Biological pretreatment of
lignocellulosics: Potential, progress and challenges. Biofuels, 1,
177–199.
Chen, W.-H., Pen, B.-L., et al. (2011). Pretreatment efficiency and
structural characterization of rice straw by an integrated process of
dilute-acid and steam explosion for bioethanol production. Bioresource Technology, 102, 2916–2924.
Chen, S., Wang, H., et al. (2020). Novel Poly(vinyl alcohol)/
Chitosan/Modified Graphene Oxide Biocomposite for Wound
Dressing Application. Macromolecular Bioscience, 20, 1900385.
Cho, E. J., Trinh, L. T. P., et al. (2020). Bioconversion of biomass waste
into high value chemicals. Bioresource Technology, 298, 122386.
Crosse, A. J., Brady, D., et al. (2019). Biodiesel’s trash is a
biorefineries’ treasure: The use of “dirty” glycerol as an industrial
fermentation substrate. World Journal of Microbiology & Biotechnology, 36, 2.
Cui, Z., Shi, J., & Li, Y. (2011). Solid-state anaerobic digestion of spent
wheat straw from horse stall. Bioresource Technology, 102, 9432–
9437.
da Rosa, L. M., Koerich, D. M., & Della Giustina, S. V. (2019).
Bioreactors operating conditions. In Essentials in Fermentation
Technology, pp. 169–212, Springer International Publishing, Cham.
Daniel, K., & Roland, L. (2016). Cellobiose dehydrogenase: An
essential enzyme for lignocellulose degradation in nature—A
review/Cellobiosedehydrogenase: Ein essentielles Enzym für den
Lignozelluloseabbau in der Natur—Eine Übersicht. Die Bodenkultur: Journal of Land Management, Food and Environment, 67,
145–163.
Dashtban, M., Schraft, H., & Qin, W. (2009). Fungal bioconversion of
lignocellulosic residues; opportunities & perspectives. International
Journal of Biological Sciences, 5, 578–595.
de Gonzalo, G., Colpa, D. I., et al. (2016). Bacterial enzymes involved
in lignin degradation. Journal of Biotechnology, 236, 110–119.
Demirbaş, A. (2006). Global renewable energy resources. Energy
Sources, Part A: Recovery, Utilization, and Environmental Effects,
28, 779–792.
Den, W., & Sharma, V. K. et al. (2018). Lignocellulosic biomass
transformations via greener oxidative pretreatment processes:
Access to energy and value-added chemicals, 6.
Dong, S., Yuan, F., et al. (2019). Clean and sustainable biocomposites
based on supramolecular interactions induced thermoplasticization
of wheat straw powders. Journal of Cleaner Production, 233, 590–
600.
Du, W., Yu, H., et al. (2011). The promoting effect of byproducts from
Irpex lacteus on subsequent enzymatic hydrolysis of bio-pretreated
cornstalks. Biotechnology for Biofuels, 4, 37.
Duff, S. J. B., & Murray, W. D. (1996). Bioconversion of forest
products industry waste cellulosics to fuel ethanol: A review.
Bioresource Technology, 55, 1–33.
Falkoski, D. L., Guimarães, V. M., et al. (2012). Characterization of
Cellulolytic Extract from Pycnoporus sanguineus PF-2 and Its
Application in Biomass Saccharification. Applied Biochemistry and
Biotechnology, 166, 1586–1603.
Ferreira, A. F. (2017). Biorefinery concept. In Biorefineries: Targeting
Energy, High Value Products and Waste Valorisation, pp. 1–20,
Springer International Publishing, Cham.
García-Cubero, M. T., González-Benito, G., et al. (2009). Effect of
ozonolysis pretreatment on enzymatic digestibility of wheat and rye
straw. Bioresource Technology, 100, 1608–1613.
Ghaffar, S. H., Fan, M., & McVicar, B. (2015). Bioengineering for
utilisation and bioconversion of straw biomass into bio-products.
Industrial Crops and Products, 77, 262–274.
380
B. A. Palvasha et al.
Abdullah, M. A., & Hussein, H. A. (2020). Integrated algal biorefinery
and palm oil milling for bioenergy, biomaterials and biopharmaceuticals. IOP Conference Series: Earth and Environmental
Science, 463, 012084.
Alahyaribeik, S., Sharifi, S. D., et al. (2020). Bioconversion of chicken
feather wastes by keratinolytic bacteria. Process Safety and
Environmental Protection, 135, 171–178.
Alcántara, J. C., & González, I., et al. (2020). Biocomposites from rice
straw Nanofibers: Morphology, thermal and mechanical properties.
Materials (Basel), 13, 2138.
Al-Haj Ibrahim, H. (2018). Bio-energy production from rice straw a
review. Recent Advances in Petrochemical Science, 5.
Alizadeh, H., Teymouri, F., et al. (2005). Pretreatment of switchgrass
by ammonia fiber explosion (AFEX). In Twenty-Sixth Symposium
on Biotechnology for Fuels and Chemicals, pp. 1133–1141,
Humana Press, Totowa, NJ, 2005.
Andlar, M., Rezić, T., et al. (2018). Lignocellulose degradation: An
overview of fungi and fungal enzymes involved in lignocellulose
degradation, 18, 768–778.
Arellano-Garcia, H., Ketabchi, E., & Ramirez Reina, T. (2017).
Integration of bio-refinery concepts in oil refineries. In Computer
Aided Chemical Engineering, pp. 829–834, Elsevier.
Bageru, A. B., & Srivastava, V. C. (2019). Efficient teff-straw based
biocomposites with chitosan and alginate for pyridine removal.
International Journal of Environmental Science and Technology,
16, 5757–5766.
Ballesteros, I., & Negro, M. J., et al. (2006). Ethanol production from
steam-explosion pretreated wheat straw. In Twenty-Seventh Symposium on Biotechnology for Fuels and Chemicals, pp. 496–508,
Humana Press, Totowa, NJ.
Batog, J., Kozlowski, R., & Przepiera, A. (2008). Lignocellulosic
composites bonded by enzymatic oxidation of lignin. Molecular
Crystals and Liquid Crystals, 484, 35/[401–42/[408].
Belal, E. B. (2013). Bioethanol production from rice straw residues.
The Brazilian Journal of Microbiology, 44, 225–234.
Biddy, M. J., Davis, R., et al. (2016). The techno-economic basis for
coproduct manufacturing to enable hydrocarbon fuel production
from lignocellulosic biomass. ACS Sustainable Chemistry &
Engineering, 4, 3196–3211.
Biernat, K., & Grzelak, P. L. (2015). Biorefinery systems as an element
of sustainable development. J Biofuels–Status Perspective.
Blomqvist, J., South, E., et al. (2011). Fermentation of lignocellulosic
hydrolysate by the alternative industrial ethanol yeast Dekkera
bruxellensis. Letters in Applied Microbiology, 53, 73–78.
Brandenburg, J., Poppele, I., et al. (2018). Bioethanol and lipid
production from the enzymatic hydrolysate of wheat straw after
furfural extraction. Applied Microbiology and Biotechnology, 102,
6269–6277.
Brown, M., & Chang, M. (2014). Exploring bacterial lignin degradation. Current Opinion in Chemical Biology, 19C, 1–7.
Buranov, A. U., & Mazza, G. (2008). Lignin in straw of herbaceous
crops. Industrial Crops and Products, 28, 237–259.
Burgard, A., Burk, M. J., et al. (2016). Development of a commercial
scale process for production of 1,4-butanediol from sugar. Current
Opinion in Biotechnology, 42, 118–125.
Chahal, P. S., & Chahal, D. S. (1998). Lignocellulosic wastes:
Biological conversion. In Bioconversion of Waste Materials to
Industrial Products, pp. 376–422, Springer US, Boston, MA.
Charnnok, B., Sakdaronnarong, C., & Sinbuathong, N. (2019).
Hydrothermal pretreatment with sulfonated bentonite catalyst
enhances potassium removal and bioconversion of oil palm empty
fruit bunch to sugar and biohydrogen. Biomass Conversion and
Biorefinery, 9, 389–399.
Cheah, W. Y., & Sankaran, R., et al. (2020). Pretreatment methods for
lignocellulosic biofuels production: Current advances, challenges
and future prospects %J Biofuel Research Journal 7, 1115–1127.
Chen, S., Zhang, X., et al. (2010). Biological pretreatment of
lignocellulosics: Potential, progress and challenges. Biofuels, 1,
177–199.
Chen, W.-H., Pen, B.-L., et al. (2011). Pretreatment efficiency and
structural characterization of rice straw by an integrated process of
dilute-acid and steam explosion for bioethanol production. Bioresource Technology, 102, 2916–2924.
Chen, S., Wang, H., et al. (2020). Novel Poly(vinyl alcohol)/
Chitosan/Modified Graphene Oxide Biocomposite for Wound
Dressing Application. Macromolecular Bioscience, 20, 1900385.
Cho, E. J., Trinh, L. T. P., et al. (2020). Bioconversion of biomass waste
into high value chemicals. Bioresource Technology, 298, 122386.
Crosse, A. J., Brady, D., et al. (2019). Biodiesel’s trash is a
biorefineries’ treasure: The use of “dirty” glycerol as an industrial
fermentation substrate. World Journal of Microbiology & Biotechnology, 36, 2.
Cui, Z., Shi, J., & Li, Y. (2011). Solid-state anaerobic digestion of spent
wheat straw from horse stall. Bioresource Technology, 102, 9432–
9437.
da Rosa, L. M., Koerich, D. M., & Della Giustina, S. V. (2019).
Bioreactors operating conditions. In Essentials in Fermentation
Technology, pp. 169–212, Springer International Publishing, Cham.
Daniel, K., & Roland, L. (2016). Cellobiose dehydrogenase: An
essential enzyme for lignocellulose degradation in nature—A
review/Cellobiosedehydrogenase: Ein essentielles Enzym für den
Lignozelluloseabbau in der Natur—Eine Übersicht. Die Bodenkultur: Journal of Land Management, Food and Environment, 67,
145–163.
Dashtban, M., Schraft, H., & Qin, W. (2009). Fungal bioconversion of
lignocellulosic residues; opportunities & perspectives. International
Journal of Biological Sciences, 5, 578–595.
de Gonzalo, G., Colpa, D. I., et al. (2016). Bacterial enzymes involved
in lignin degradation. Journal of Biotechnology, 236, 110–119.
Demirbaş, A. (2006). Global renewable energy resources. Energy
Sources, Part A: Recovery, Utilization, and Environmental Effects,
28, 779–792.
Den, W., & Sharma, V. K. et al. (2018). Lignocellulosic biomass
transformations via greener oxidative pretreatment processes:
Access to energy and value-added chemicals, 6.
Dong, S., Yuan, F., et al. (2019). Clean and sustainable biocomposites
based on supramolecular interactions induced thermoplasticization
of wheat straw powders. Journal of Cleaner Production, 233, 590–
600.
Du, W., Yu, H., et al. (2011). The promoting effect of byproducts from
Irpex lacteus on subsequent enzymatic hydrolysis of bio-pretreated
cornstalks. Biotechnology for Biofuels, 4, 37.
Duff, S. J. B., & Murray, W. D. (1996). Bioconversion of forest
products industry waste cellulosics to fuel ethanol: A review.
Bioresource Technology, 55, 1–33.
Falkoski, D. L., Guimarães, V. M., et al. (2012). Characterization of
Cellulolytic Extract from Pycnoporus sanguineus PF-2 and Its
Application in Biomass Saccharification. Applied Biochemistry and
Biotechnology, 166, 1586–1603.
Ferreira, A. F. (2017). Biorefinery concept. In Biorefineries: Targeting
Energy, High Value Products and Waste Valorisation, pp. 1–20,
Springer International Publishing, Cham.
García-Cubero, M. T., González-Benito, G., et al. (2009). Effect of
ozonolysis pretreatment on enzymatic digestibility of wheat and rye
straw. Bioresource Technology, 100, 1608–1613.
Ghaffar, S. H., Fan, M., & McVicar, B. (2015). Bioengineering for
utilisation and bioconversion of straw biomass into bio-products.
Industrial Crops and Products, 77, 262–274.
380
B. A. Palvasha et al.
