Saha, B. C., & Cotta, M. A. (2006). Ethanol production from alkaline
peroxide pretreated enzymatically saccharified wheat straw.
Biotechnology Progress, 22(2), 449–453.
Salit, M. S. (2018). Effect of microcrystalline cellulose reinforcement
on mechanical and water barrier properties of sugar palm starch
Biocomposite films. Southeast Asian Regional Center for Graduate
Study and Research in ….
Sanchez, C. (2009). Lignocellulosic residues: Biodegradation and
bioconversion by fungi. Biotechnology Advances, 27(2), 185–194.
Schell, D. J., Ruth, M. F., & Tucker, M. P. (1999). Modeling the
enzymatic hydrolysis of dilute-acid pretreated douglas fir. Applied
Biochemistry and Biotechnology, 77(1–3), 67–81.
Schieber, A., Stintzing, F. C., & Carle, R. (2001). By-products of plant food
processing as a source of functional compounds—recent developments.
Trends in Food Science & Technology, 12(11), 401–413.
Scott, G. M., et al. (1998). New technology for papermaking:
commercializing biopulping. Tappi Journal, 81(11), 220–225.
Serrano-León, J. S., et al. (2018). Chitosan active films containing
agro-industrial residue extracts for shelf life extension of chicken
restructured product. Food Research International, 108, 93–100.
Shahidi, F., & Ambigaipalan, P. (2015). Phenolics and polyphenolics in
foods, beverages and spices: Antioxidant activity and health effects–
A review. Journal of Functional Foods, 18, 820–897.
Shimizu, F. L., et al. (2018). Acid, alkali and peroxide pretreatments
increase the cellulose accessibility and glucose yield of banana
pseudostem. Industrial Crops and Products, 115, 62–68.
Sindhu, R., Binod, P., & Pandey, A. (2016). Biological pretreatment of
lignocellulosic biomass–An overview. Bioresource Technology,
199, 76–82.
Singh, A., Van Hamme, J. D., & Ward, O. P. (2007). Surfactants in
microbiology and biotechnology: Part 2 Application aspects.
Biotechnology advances, 25(1), 99–121.
Singh, L. K., et al. (2011). Utilization of hemicellulosic fraction of
lignocellulosic biomaterial for bioethanol production. Advances in
Applied Science Research, 2(5), 508–521.
Slavov, A., et al. (2017). Combined recovery of polysaccharides and
polyphenols from Rosa damascena wastes. Industrial Crops and
Products, 100, 85–94.
Spanos, G. A., & Wrolstad, R. E. (1992). Phenolics of apple, pear, and
white grape juices and their changes with processing and storage.
A review. Journal of Agricultural and Food Chemistry, 40(9),
1478–1487.
Stanton, J., et al. (2018). Impact of ionic liquid type on the structure,
morphology and properties of silk-cellulose biocomposite materials.
International Journal of Biological Macromolecules, 108, 333–341.
Stefou, I., et al. (2019). Development of sodium propionate-based deep
eutectic solvents for polyphenol extraction from onion solid wastes.
Clean Technologies and Environmental Policy, 21(8), 1563–1574.
Subhedar, P., & Gogate, P. (2016). Use of ultrasound for pretreatment
of biomass and subsequent hydrolysis and fermentation. In Biomass
Fractionation Technologies for a Lignocellulosic Feedstock Based
Biorefinery, Elsevier, pp. 127–149.
Sun, Y., & Cheng, J. (2002). Hydrolysis of lignocellulosic materials for
ethanol production: A review. Bioresource Technology, 83(1), 1–
11.
Tajkarimi, M., Ibrahim, S. A., & Cliver, D. (2010). Antimicrobial herb
and spice compounds in food. Food Control, 21(9), 1199–1218.
Tanjore, D., & Richard, T. L. (2015). A systems view of lignocellulose
hydrolysis, in Advances in bioprocess technology. 2015, Springer,
pp. 387–419.
Torget, R., & Teh-An, H. (1994). Two-temperature dilute-acid
prehydrolysis of hardwood xylan using a percolation process.
Applied Biochemistry and Biotechnology, 45(1), 5–22.
Ummalyma, S. B., et al. (2019). Biological pretreatment of lignocellulosic biomass—Current trends and future perspectives. In Second
and Third Generation of Feedstocks. 2019, Elsevier, pp. 197–212.
Uzuner, S., et al. (2018). A novel oxidative destruction of lignin and
enzymatic digestibility of hazelnut shells. Biocatalysis and Agricultural Biotechnology, 13, 110–115.
Vaisanen, T., Das, O., & Tomppo, L. (2017). A review on new
bio-based constituents for natural fiber-polymer composites. Journal of Cleaner Production, 149, 582–596.
Väisänen, T., et al. (2016). Utilization of agricultural and forest industry
waste and residues in natural fiber-polymer composites: A review.
Waste Management, 54, 62–73.
Vandi, L. J., et al. (2019). Extrusion of wood fibre reinforced poly
(hydroxybutyrate-co-hydroxyvalerate)(PHBV) biocomposites: Statistical analysis of the effect of processing conditions on mechanical
performance. Polymer Degradation and Stability, 159, 1–14.
Vassilev, S. V., Vassileva, C. G., & Vassilev, V. S. (2015). Advantages
and disadvantages of composition and properties of biomass in
comparison with coal: An overview. Fuel, 158, 330–350.
Vera, E. C. S., et al. (2018). Optimization of biosurfactant and
bacteriocin-like inhibitory substance (BLIS) production by Lactococcus lactis CECT-4434 from agroindustrial waste. Biochemical
Engineering Journal, 133, 168–178.
Wan, Y. L., & Mun, Y. J. (2018). Assessment of natural deep eutectic
solvent pretreatment on sugar production from lignocellulosic
biomass. In MATEC Web of Conferences. 2018. EDP Sciences.
Wang, B., et al. (2016). Advances in recycling and utilization of
agricultural wastes in China: Based on environmental risk, crucial
pathways, influencing factors, policy mechanism. Procedia environmental sciences, 31, 12–17.
Wyman, C. E., et al. (2005). Coordinated development of leading
biomass pretreatment technologies. Bioresource Technology, 96
(18), 1959–1966.
Xu, G., et al. (2008). Composition and distribution of phenolic acids in
Ponkan (Citrus poonensis Hort. ex Tanaka) and Huyou (Citrus
paradisi Macf. Changshanhuyou) during maturity. Journal of Food
Composition and Analysis, 21(5), 382–389.
Xu, D.-P., et al. (2017). Natural antioxidants in foods and medicinal
plants: Extraction, assessment and resources. International Journal
of Molecular Sciences, 18(1), 96.
Banat, I. M., & Thavasi, R. (2019). Microbial biosurfactants and their
environmental and industrial applications. CRC Press.
Yang, M., et al. (2018). Influence of size reduction treatments on sugar
recovery from Norway spruce for butanol production. Bioresource
Technology, 257, 113–120.
Yuan, J. S., et al. (2008). Plants to power: bioenergy to fuel the future.
Trends in Plant Science, 13(8), 421–429.
Zabed, H., et al. (2016). Fuel ethanol production from lignocellulosic
biomass: An overview on feedstocks and technological approaches.
Renewable and Sustainable Energy Reviews, 66, 751–774.
Zabed, H., et al. (2017). Bioethanol production from renewable
sources: Current perspectives and technological progress. Renewable and Sustainable Energy Reviews, 71, 475–501.
Zailuddin, N. L. I., et al. (2017). Characterization and properties of
treated oil palm empty fruit bunch regenerated cellulose biocomposite films with butyl methacrylate using ionic liquid.
Polymer-Plastics Technology and Engineering, 56(2), 109–116.
Zhang, H., & Tsao, R. (2016). Dietary polyphenols, oxidative stress
and antioxidant and anti-inflammatory effects. Current Opinion in
Food Science, 8, 33–42.
Zheng, Y., et al. (2014). Pretreatment of lignocellulosic biomass for
enhanced biogas production. Progress in Energy and Combustion
Science, 42, 35–53.
Bioconversion of Agro-Industrial Waste into Value-Added Compounds
367
peroxide pretreated enzymatically saccharified wheat straw.
Biotechnology Progress, 22(2), 449–453.
Salit, M. S. (2018). Effect of microcrystalline cellulose reinforcement
on mechanical and water barrier properties of sugar palm starch
Biocomposite films. Southeast Asian Regional Center for Graduate
Study and Research in ….
Sanchez, C. (2009). Lignocellulosic residues: Biodegradation and
bioconversion by fungi. Biotechnology Advances, 27(2), 185–194.
Schell, D. J., Ruth, M. F., & Tucker, M. P. (1999). Modeling the
enzymatic hydrolysis of dilute-acid pretreated douglas fir. Applied
Biochemistry and Biotechnology, 77(1–3), 67–81.
Schieber, A., Stintzing, F. C., & Carle, R. (2001). By-products of plant food
processing as a source of functional compounds—recent developments.
Trends in Food Science & Technology, 12(11), 401–413.
Scott, G. M., et al. (1998). New technology for papermaking:
commercializing biopulping. Tappi Journal, 81(11), 220–225.
Serrano-León, J. S., et al. (2018). Chitosan active films containing
agro-industrial residue extracts for shelf life extension of chicken
restructured product. Food Research International, 108, 93–100.
Shahidi, F., & Ambigaipalan, P. (2015). Phenolics and polyphenolics in
foods, beverages and spices: Antioxidant activity and health effects–
A review. Journal of Functional Foods, 18, 820–897.
Shimizu, F. L., et al. (2018). Acid, alkali and peroxide pretreatments
increase the cellulose accessibility and glucose yield of banana
pseudostem. Industrial Crops and Products, 115, 62–68.
Sindhu, R., Binod, P., & Pandey, A. (2016). Biological pretreatment of
lignocellulosic biomass–An overview. Bioresource Technology,
199, 76–82.
Singh, A., Van Hamme, J. D., & Ward, O. P. (2007). Surfactants in
microbiology and biotechnology: Part 2 Application aspects.
Biotechnology advances, 25(1), 99–121.
Singh, L. K., et al. (2011). Utilization of hemicellulosic fraction of
lignocellulosic biomaterial for bioethanol production. Advances in
Applied Science Research, 2(5), 508–521.
Slavov, A., et al. (2017). Combined recovery of polysaccharides and
polyphenols from Rosa damascena wastes. Industrial Crops and
Products, 100, 85–94.
Spanos, G. A., & Wrolstad, R. E. (1992). Phenolics of apple, pear, and
white grape juices and their changes with processing and storage.
A review. Journal of Agricultural and Food Chemistry, 40(9),
1478–1487.
Stanton, J., et al. (2018). Impact of ionic liquid type on the structure,
morphology and properties of silk-cellulose biocomposite materials.
International Journal of Biological Macromolecules, 108, 333–341.
Stefou, I., et al. (2019). Development of sodium propionate-based deep
eutectic solvents for polyphenol extraction from onion solid wastes.
Clean Technologies and Environmental Policy, 21(8), 1563–1574.
Subhedar, P., & Gogate, P. (2016). Use of ultrasound for pretreatment
of biomass and subsequent hydrolysis and fermentation. In Biomass
Fractionation Technologies for a Lignocellulosic Feedstock Based
Biorefinery, Elsevier, pp. 127–149.
Sun, Y., & Cheng, J. (2002). Hydrolysis of lignocellulosic materials for
ethanol production: A review. Bioresource Technology, 83(1), 1–
11.
Tajkarimi, M., Ibrahim, S. A., & Cliver, D. (2010). Antimicrobial herb
and spice compounds in food. Food Control, 21(9), 1199–1218.
Tanjore, D., & Richard, T. L. (2015). A systems view of lignocellulose
hydrolysis, in Advances in bioprocess technology. 2015, Springer,
pp. 387–419.
Torget, R., & Teh-An, H. (1994). Two-temperature dilute-acid
prehydrolysis of hardwood xylan using a percolation process.
Applied Biochemistry and Biotechnology, 45(1), 5–22.
Ummalyma, S. B., et al. (2019). Biological pretreatment of lignocellulosic biomass—Current trends and future perspectives. In Second
and Third Generation of Feedstocks. 2019, Elsevier, pp. 197–212.
Uzuner, S., et al. (2018). A novel oxidative destruction of lignin and
enzymatic digestibility of hazelnut shells. Biocatalysis and Agricultural Biotechnology, 13, 110–115.
Vaisanen, T., Das, O., & Tomppo, L. (2017). A review on new
bio-based constituents for natural fiber-polymer composites. Journal of Cleaner Production, 149, 582–596.
Väisänen, T., et al. (2016). Utilization of agricultural and forest industry
waste and residues in natural fiber-polymer composites: A review.
Waste Management, 54, 62–73.
Vandi, L. J., et al. (2019). Extrusion of wood fibre reinforced poly
(hydroxybutyrate-co-hydroxyvalerate)(PHBV) biocomposites: Statistical analysis of the effect of processing conditions on mechanical
performance. Polymer Degradation and Stability, 159, 1–14.
Vassilev, S. V., Vassileva, C. G., & Vassilev, V. S. (2015). Advantages
and disadvantages of composition and properties of biomass in
comparison with coal: An overview. Fuel, 158, 330–350.
Vera, E. C. S., et al. (2018). Optimization of biosurfactant and
bacteriocin-like inhibitory substance (BLIS) production by Lactococcus lactis CECT-4434 from agroindustrial waste. Biochemical
Engineering Journal, 133, 168–178.
Wan, Y. L., & Mun, Y. J. (2018). Assessment of natural deep eutectic
solvent pretreatment on sugar production from lignocellulosic
biomass. In MATEC Web of Conferences. 2018. EDP Sciences.
Wang, B., et al. (2016). Advances in recycling and utilization of
agricultural wastes in China: Based on environmental risk, crucial
pathways, influencing factors, policy mechanism. Procedia environmental sciences, 31, 12–17.
Wyman, C. E., et al. (2005). Coordinated development of leading
biomass pretreatment technologies. Bioresource Technology, 96
(18), 1959–1966.
Xu, G., et al. (2008). Composition and distribution of phenolic acids in
Ponkan (Citrus poonensis Hort. ex Tanaka) and Huyou (Citrus
paradisi Macf. Changshanhuyou) during maturity. Journal of Food
Composition and Analysis, 21(5), 382–389.
Xu, D.-P., et al. (2017). Natural antioxidants in foods and medicinal
plants: Extraction, assessment and resources. International Journal
of Molecular Sciences, 18(1), 96.
Banat, I. M., & Thavasi, R. (2019). Microbial biosurfactants and their
environmental and industrial applications. CRC Press.
Yang, M., et al. (2018). Influence of size reduction treatments on sugar
recovery from Norway spruce for butanol production. Bioresource
Technology, 257, 113–120.
Yuan, J. S., et al. (2008). Plants to power: bioenergy to fuel the future.
Trends in Plant Science, 13(8), 421–429.
Zabed, H., et al. (2016). Fuel ethanol production from lignocellulosic
biomass: An overview on feedstocks and technological approaches.
Renewable and Sustainable Energy Reviews, 66, 751–774.
Zabed, H., et al. (2017). Bioethanol production from renewable
sources: Current perspectives and technological progress. Renewable and Sustainable Energy Reviews, 71, 475–501.
Zailuddin, N. L. I., et al. (2017). Characterization and properties of
treated oil palm empty fruit bunch regenerated cellulose biocomposite films with butyl methacrylate using ionic liquid.
Polymer-Plastics Technology and Engineering, 56(2), 109–116.
Zhang, H., & Tsao, R. (2016). Dietary polyphenols, oxidative stress
and antioxidant and anti-inflammatory effects. Current Opinion in
Food Science, 8, 33–42.
Zheng, Y., et al. (2014). Pretreatment of lignocellulosic biomass for
enhanced biogas production. Progress in Energy and Combustion
Science, 42, 35–53.
Bioconversion of Agro-Industrial Waste into Value-Added Compounds
367
