Pal, M., Calvo, A. M., Terron, M. C., & Gonzalez, A. E. (1995).
Solid-state fermentation of sugarcane bagasse with Flammulina
velutipes and Trametes versicolor. World Journal of Microbiology
& Biotechnology, 11(5), 541–545.
Parawira, W., Murto, M., Zvauya, R., & Mattiasson, B. (2004).
Anaerobic batch digestion of solid potato waste alone and in
combination with sugar beet leaves. Renewable Energy, 29(11),
1811–1823.
Pasquini, D., Pimenta, M. T. B., Ferreira, L. H., & da Silva Curvelo, A.
A. (2005). Extraction of lignin from sugar cane bagasse and Pinus
taeda wood chips using ethanol–water mixtures and carbon dioxide
at high pressures. The Journal of Supercritical Fluids, 36(1), 31–39.
Pérez-Rodríguez, N., García-Bernet, D., & Domínguez, J. M. (2018).
Faster methane production after sequential extrusion and enzymatic
hydrolysis of vine trimming shoots. Environmental Chemistry
Letters, 16(1), 295–299.
Pfaltzgraff, L. A., Cooper, E. C., Budarin, V., & Clark, J. H. (2013).
Food waste biomass: a resource for high-value chemicals. Green
Chemistry, 15(2), 307–314.
Pham, T. P. T., Kaushik, R., Parshetti, G. K., Mahmood, R., &
Balasubramanian, R. (2015). Food waste-to-energy conversion
technologies: Current status and future directions. Waste Management, 38, 399–408.
Pothiraj, C., Kanmani, P., & Balaji, P. (2006). Bioconversion of
lignocellulose materials. Mycobiology, 34(4), 159–165.
Rabinovich, M. L., Melnik, M. S., & Bolobova, A. V. (2002).
Dedicated to the memory of IV Berezin and RV feniksova microbial
cellulases. Applied Biochemistry and Microbiology, 38(4), 305–
322.
Ramzan, N., Naveed, S., Latif, N., & Saleemi, A. R. (2010).
Characterization of kitchen waste as a feedstocks for biogas
generation by thermophilicanaerobic digestion. NUST Journal of
Engineering Sciences, 3(1), 15–21.
Rodrıguez-Chong, A., Ramı rez, J.A., Garrote, G., & Vázquez, M.
(2004). Hydrolysis of sugar cane bagasse using nitric acid: a kinetic
assessment. Journal of Food Engineering, 61(2), 143–152.
Ruggeri, B., & Sassi, G. (2003). Experimental sensitivity analysis of a
trickle bed bioreactor for lignin peroxidases production by
P. chrysosporium. Process Biochemistry, 38(12), 1669–1676.
Ruzene, D. S., Gonçalves, A. R., Teixeira, J. A., & De Amorim, M.
T. P. (2007). Carboxymethylcellulose obtained by ethanol/water
organosolv process under acid conditions. In Applied biochemistry
and biotecnology (pp. 573–582). Humana Press.
Sarkar, N., Ghosh, S. K., Bannerjee, S., & Aikat, K. (2012). Bioethanol
production from agricultural wastes: An overview. Renewable
Energy, 37(1), 19–27.
Saul, D. J., Williams, L. C., Grayling, R. A., Chamley, L. W., Love, D.
R., & Bergquist, P. L. (1990). celB, a gene coding for a bifunctional
cellulase from the extreme thermophile “Caldocellum saccharolyticum”. Applied and Environmental Microbiology, 56(10),
3117–3124.
Sawayama, S., Inoue, S., Minowa, T., Tsukahara, K., & Ogi, T. (1997).
Thermochemical liquidization and anaerobic treatment of kitchen
garbage. Journal of Fermentation and Bioengineering, 83(5), 451–
455.
Segneanu, A. E., Macarie, C. A., Pop, R. O., & Balcu, I. (2011).
Combined microwave-acid pretreatment of the biomass. In Progress in biomass and bioenergy production (pp. 223–228). Croatia:
In Tech.
Shallom, D., & Shoham, Y. (2003). Microbial hemicellulases. Current
Opinion in Microbiology, 6(3), 219–228.
Singh, A., & Mishra, P. (1995). Microbial pentose utilization: Current
applications in biotechnology. Elsevier.
Sun, Y., & Cheng, J. (2002). Hydrolysis of lignocellulosic materials for
ethanol production: A review. Bioresource Technology, 83(1),
1–11.
Sun, R. C., & Tomkinson, J. (2002). Characterization of hemicelluloses
obtained by classical and ultrasonically assisted extractions from
wheat straw. Carbohydrate Polymers, 50(3), 263–271.
Taherzadeh, M. J., & Karimi, K. (2007). Enzymatic-based hydrolysis
processes for ethanol from lignocellulosic materials: A review.
BioResources, 2(4), 707–738.
Taherzadeh, M. J., & Karimi, K. (2008). Pretreatment of lignocellulosic
wastes to improve ethanol and biogas production: A review.
International Journal of Molecular Sciences, 9(9), 1621–1651.
Vidal, P. F., & Molinier, J. (1988). Ozonolysis of lignin—Improvement
of in vitro digestibility of poplar sawdust. Biomass, 16(1), 1–17.
Wood, T. M. (1992). Fungal cellulases. In: Haigler biosynthesis and
biodegradation of cellulose (pp. 491–534). New York: Macel
Dekker Inc.
Xiong, J., Ye, J., Liang, W. Z., & Fan, P. M. (2000). Influence of
microwave on the ultrastructure of cellulose I. Journal of South
China University Technology, 28(1), 84–89.
Yachmenev, V., Condon, B., Klasson, T., & Lambert, A. (2009).
Acceleration of the enzymatic hydrolysis of corn stover and sugar
cane bagasse celluloses by low intensity uniform ultrasound.
Journal of Biobased Materials and Bioenergy, 3(1), 25–31.
Yamashita, Y., Shono, M., Sasaki, C., & Nakamura, Y. (2010).
Alkaline peroxide pretreatment for efficient enzymatic saccharification of bamboo. Carbohydrate Polymers, 79(4), 914–920.
Zhang, Y. Q., Fu, E. H., & Liang, J. H. (2008). Effect of ultrasonic
waves on the saccharification processes of lignocellulose. Chemical
Engineering & Technology: Industrial Chemistry-Plant
Equipment-Process Engineering-Biotechnology, 31(10), 1510–
1515.
Zhang, L., Lee, Y. W., & Jahng, D. (2011). Anaerobic co-digestion of
food waste and piggery wastewater: Focusing on the role of trace
elements. Bioresource Technology, 102(8), 5048–5059.
Zhang, C., Xiao, G., Peng, L., Su, H., & Tan, T. (2013). The anaerobic
co-digestion of food waste and cattle manure. Bioresource Technology, 129, 170–176.
Zhang, R., El-Mashad, H. M., Hartman, K., Wang, F., Liu, G., Choate,
C., et al. (2007). Characterization of food waste as feedstock for
anaerobic digestion. Bioresource Technology, 98(4), 929–935.
Zhu, B., Gikas, P., Zhang, R., Lord, J., Jenkins, B., & Li, X. (2009).
Characteristics and biogas production potential of municipal solid
wastes pretreated with a rotary drum reactor. Bioresource Technology, 100(3), 1122–1129.
94
N. Bordoloi et al.
Solid-state fermentation of sugarcane bagasse with Flammulina
velutipes and Trametes versicolor. World Journal of Microbiology
& Biotechnology, 11(5), 541–545.
Parawira, W., Murto, M., Zvauya, R., & Mattiasson, B. (2004).
Anaerobic batch digestion of solid potato waste alone and in
combination with sugar beet leaves. Renewable Energy, 29(11),
1811–1823.
Pasquini, D., Pimenta, M. T. B., Ferreira, L. H., & da Silva Curvelo, A.
A. (2005). Extraction of lignin from sugar cane bagasse and Pinus
taeda wood chips using ethanol–water mixtures and carbon dioxide
at high pressures. The Journal of Supercritical Fluids, 36(1), 31–39.
Pérez-Rodríguez, N., García-Bernet, D., & Domínguez, J. M. (2018).
Faster methane production after sequential extrusion and enzymatic
hydrolysis of vine trimming shoots. Environmental Chemistry
Letters, 16(1), 295–299.
Pfaltzgraff, L. A., Cooper, E. C., Budarin, V., & Clark, J. H. (2013).
Food waste biomass: a resource for high-value chemicals. Green
Chemistry, 15(2), 307–314.
Pham, T. P. T., Kaushik, R., Parshetti, G. K., Mahmood, R., &
Balasubramanian, R. (2015). Food waste-to-energy conversion
technologies: Current status and future directions. Waste Management, 38, 399–408.
Pothiraj, C., Kanmani, P., & Balaji, P. (2006). Bioconversion of
lignocellulose materials. Mycobiology, 34(4), 159–165.
Rabinovich, M. L., Melnik, M. S., & Bolobova, A. V. (2002).
Dedicated to the memory of IV Berezin and RV feniksova microbial
cellulases. Applied Biochemistry and Microbiology, 38(4), 305–
322.
Ramzan, N., Naveed, S., Latif, N., & Saleemi, A. R. (2010).
Characterization of kitchen waste as a feedstocks for biogas
generation by thermophilicanaerobic digestion. NUST Journal of
Engineering Sciences, 3(1), 15–21.
Rodrıguez-Chong, A., Ramı rez, J.A., Garrote, G., & Vázquez, M.
(2004). Hydrolysis of sugar cane bagasse using nitric acid: a kinetic
assessment. Journal of Food Engineering, 61(2), 143–152.
Ruggeri, B., & Sassi, G. (2003). Experimental sensitivity analysis of a
trickle bed bioreactor for lignin peroxidases production by
P. chrysosporium. Process Biochemistry, 38(12), 1669–1676.
Ruzene, D. S., Gonçalves, A. R., Teixeira, J. A., & De Amorim, M.
T. P. (2007). Carboxymethylcellulose obtained by ethanol/water
organosolv process under acid conditions. In Applied biochemistry
and biotecnology (pp. 573–582). Humana Press.
Sarkar, N., Ghosh, S. K., Bannerjee, S., & Aikat, K. (2012). Bioethanol
production from agricultural wastes: An overview. Renewable
Energy, 37(1), 19–27.
Saul, D. J., Williams, L. C., Grayling, R. A., Chamley, L. W., Love, D.
R., & Bergquist, P. L. (1990). celB, a gene coding for a bifunctional
cellulase from the extreme thermophile “Caldocellum saccharolyticum”. Applied and Environmental Microbiology, 56(10),
3117–3124.
Sawayama, S., Inoue, S., Minowa, T., Tsukahara, K., & Ogi, T. (1997).
Thermochemical liquidization and anaerobic treatment of kitchen
garbage. Journal of Fermentation and Bioengineering, 83(5), 451–
455.
Segneanu, A. E., Macarie, C. A., Pop, R. O., & Balcu, I. (2011).
Combined microwave-acid pretreatment of the biomass. In Progress in biomass and bioenergy production (pp. 223–228). Croatia:
In Tech.
Shallom, D., & Shoham, Y. (2003). Microbial hemicellulases. Current
Opinion in Microbiology, 6(3), 219–228.
Singh, A., & Mishra, P. (1995). Microbial pentose utilization: Current
applications in biotechnology. Elsevier.
Sun, Y., & Cheng, J. (2002). Hydrolysis of lignocellulosic materials for
ethanol production: A review. Bioresource Technology, 83(1),
1–11.
Sun, R. C., & Tomkinson, J. (2002). Characterization of hemicelluloses
obtained by classical and ultrasonically assisted extractions from
wheat straw. Carbohydrate Polymers, 50(3), 263–271.
Taherzadeh, M. J., & Karimi, K. (2007). Enzymatic-based hydrolysis
processes for ethanol from lignocellulosic materials: A review.
BioResources, 2(4), 707–738.
Taherzadeh, M. J., & Karimi, K. (2008). Pretreatment of lignocellulosic
wastes to improve ethanol and biogas production: A review.
International Journal of Molecular Sciences, 9(9), 1621–1651.
Vidal, P. F., & Molinier, J. (1988). Ozonolysis of lignin—Improvement
of in vitro digestibility of poplar sawdust. Biomass, 16(1), 1–17.
Wood, T. M. (1992). Fungal cellulases. In: Haigler biosynthesis and
biodegradation of cellulose (pp. 491–534). New York: Macel
Dekker Inc.
Xiong, J., Ye, J., Liang, W. Z., & Fan, P. M. (2000). Influence of
microwave on the ultrastructure of cellulose I. Journal of South
China University Technology, 28(1), 84–89.
Yachmenev, V., Condon, B., Klasson, T., & Lambert, A. (2009).
Acceleration of the enzymatic hydrolysis of corn stover and sugar
cane bagasse celluloses by low intensity uniform ultrasound.
Journal of Biobased Materials and Bioenergy, 3(1), 25–31.
Yamashita, Y., Shono, M., Sasaki, C., & Nakamura, Y. (2010).
Alkaline peroxide pretreatment for efficient enzymatic saccharification of bamboo. Carbohydrate Polymers, 79(4), 914–920.
Zhang, Y. Q., Fu, E. H., & Liang, J. H. (2008). Effect of ultrasonic
waves on the saccharification processes of lignocellulose. Chemical
Engineering & Technology: Industrial Chemistry-Plant
Equipment-Process Engineering-Biotechnology, 31(10), 1510–
1515.
Zhang, L., Lee, Y. W., & Jahng, D. (2011). Anaerobic co-digestion of
food waste and piggery wastewater: Focusing on the role of trace
elements. Bioresource Technology, 102(8), 5048–5059.
Zhang, C., Xiao, G., Peng, L., Su, H., & Tan, T. (2013). The anaerobic
co-digestion of food waste and cattle manure. Bioresource Technology, 129, 170–176.
Zhang, R., El-Mashad, H. M., Hartman, K., Wang, F., Liu, G., Choate,
C., et al. (2007). Characterization of food waste as feedstock for
anaerobic digestion. Bioresource Technology, 98(4), 929–935.
Zhu, B., Gikas, P., Zhang, R., Lord, J., Jenkins, B., & Li, X. (2009).
Characteristics and biogas production potential of municipal solid
wastes pretreated with a rotary drum reactor. Bioresource Technology, 100(3), 1122–1129.
94
N. Bordoloi et al.
