Hideno, A., Inoue, H., Tsukahara, K., Fujimoto, S., Minowa, T., Inoue,
S., et al. (2009). Wet disk milling pretreatment without sulfuric acid
for enzymatic hydrolysis of rice straw. Bioresource Technology,
100(10), 2706–2711.
Ho, K. S., & Chu, L. M. (2019). Characterization of food waste from
different sources in Hong Kong. Journal of the Air and Waste
Management Association, 69(3), 277–288.
Howard, R. L., Abotsi, E. L. J. R., Van Rensburg, E. J., & Howard, S. (2003).
Lignocellulose biotechnology: Issues of bioconversion and enzyme
production. African Journal of Biotechnology, 2(12), 602–619.
https://www.magnet.co.uk/advice-inspiration/blog/2018/February/
food-waste-around-the-world/. Retrieved from June 18, 2020.
https://www.statista.com/statistics/933059/per-capita-food-waste-ofselected-countries/. Retrieved from June 18, 2020.
Irshad, M., Bahadur, B. A., Anwar, Z., Yaqoob, M., Ijaz, A., & Iqbal,
H. M. N. (2012). Decolorization applicability of sol-gel
matrix-immobilized laccase produced from Ganoderma leucidum
using agro-industrial waste. BioResources, 7(3), 4249–4261.
Jansson, A. T., Patinvoh, R. J., Sárvári Horváth, I., & Taherzadeh, M.
J. (2019). Dry anaerobic digestion of food and paper industry wastes
at different solid contents. Fermentation, 5(2), 40.
Jayalakshmi, S., Joseph, K., & Sukumaran, V. (2009). Bio hydrogen
generation from kitchen waste in an inclined plug flow reactor.
International Journal of Hydrogen Energy, 34(21), 8854–8858.
Jecu, L. (2000). Solid state fermentation of agricultural wastes for
endoglucanase production. Industrial Crops and Products, 11(1),
1–5.
Jędrzejczyk, M., Soszka, E., Czapnik, M., Ruppert, A. M., & Grams,
J. (2019). Physical and chemical pretreatment of lignocellulosic
biomass. In Second and third generation of feedstocks (pp. 143–
196). Elsevier.
Jørgensen, H., Eriksson, T., Börjesson, J., Tjerneld, F., & Olsson, L.
(2003). Purification and characterization of five cellulases and one
xylanase from Penicillium brasilianum IBT 20888. Enzyme and
Microbial Technology, 32(7), 851–861.
Kaar, W. E., Gutierrez, C. V., & Kinoshita, C. M. (1998). Steam
explosion of sugarcane bagasse as a pretreatment for conversion to
ethanol. Biomass and Bioenergy, 14(3), 277–287.
Kabouris, J. C., Tezel, U., Pavlostathis, S. G., Engelmann, M.,
Dulaney, J., Gillette, R. A., et al. (2009). Methane recovery from the
anaerobic codigestion of municipal sludge and FOG. Bioresource
Technology, 100(15), 3701–3705.
Kelley, R. L., & Reddy, C. A. (1986). Purification and characterization
of glucose oxidase from ligninolytic cultures of Phanerochaete
chrysosporium. Journal of Bacteriology, 166(1), 269–274.
Kersten, P. J., & Kirk, T. K. (1987). Involvement of a new enzyme,
glyoxal oxidase, in extracellular H 2 O 2 production by Phanerochaete
chrysosporium. Journal of Bacteriology, 169(5), 2195–2201.
Kim, S. H., & Shin, H. S. (2008). Effects of base-pretreatment on
continuous enriched culture for hydrogen production from food waste.
International Journal of Hydrogen Energy, 33(19), 5266–5274.
Kim, H. J., Kim, S. H., Choi, Y. G., Kim, G. D., & Chung, T. H.
(2006a). Effect of enzymatic pretreatment on acid fermentation of
food waste. Journal of Chemical Technology & Biotechnology:
International Research in Process, Environmental & Clean Technology, 81(6), 974–980.
Kim, J. K., Oh, B. R., Chun, Y. N., & Kim, S. W. (2006b). Effects of
temperature and hydraulic retention time on anaerobic digestion of
food waste. Journal of Bioscience and Bioengineering, 102(4),
328–332.
Kivaisi, A. K., & Eliapenda, S. (1994). Pretreatment of bagasse and
coconut fibres for enhanced anaerobic degradation by rumen
microorganisms. Renewable Energy, 5(5–8), 791–795.
Koo, B. W., Kim, H. Y., Park, N., Lee, S. M., Yeo, H., & Choi, I. G.
(2011). Organosolv pretreatment of Liriodendron tulipifera and
simultaneous saccharification and fermentation for bioethanol
production. Biomass and Bioenergy, 35(5), 1833–1840.
Krause, D. O., Denman, S. E., Mackie, R. I., Morrison, M., Rae, A. L.,
Attwood, G. T., et al. (2003). Opportunities to improve fiber
degradation in the rumen: Microbiology, ecology, and genomics.
FEMS Microbiology Reviews, 27(5), 663–693.
Kuhad, R. C., Singh, A., & Eriksson, K. E. L. (1997). Microorganisms
and enzymes involved in the degradation of plant fiber cell walls. In
Biotechnology in the pulp and paper industry (pp. 45–125). Berlin,
Heidelberg: Springer.
Kumar, P., Barrett, D. M., Delwiche, M. J., & Stroeve, P. (2009).
Methods for pretreatment of lignocellulosic biomass for efficient
hydrolysis and biofuel production. Industrial and Engineering
Chemistry Research, 48(8), 3713–3729.
Laopaiboon, P., Thani, A., Leelavatcharamas, V., & Laopaiboon, L.
(2010). Acid hydrolysis of sugarcane bagasse for lactic acid
production. Bioresource Technology, 101(3), 1036–1043.
Linke, B. (2006). Kinetic study of thermophilic anaerobic digestion of
solid wastes from potato processing. Biomass and Bioenergy, 30
(10), 892–896.
Lonsane, B. K., Saucedo-Castaneda, G., Raimbault, M., Roussos, S.,
Viniegra-Gonzalez, G., Ghildyal, N. P., et al. (1992). Scale-up
strategies for solid state fermentation systems. Process Biochemistry, 27(5), 259–273.
Lu, X., Xi, B., Zhang, Y., & Angelidaki, I. (2011). Microwave
pretreatment of rape straw for bioethanol production: Focus on
energy efficiency. Bioresource Technology, 102(17), 7937–7940.
Malherbe, S., & Cloete, T. E. (2002). Lignocellulose biodegradation:
Fundamentals and applications. Reviews in Environmental Science
& Biotechnology, 1(2), 105–114.
McCarthy, A. J. (1987). Lignocellulose-degrading actinomycetes.
FEMS Microbiology Reviews, 3(2), 145–163.
Morris, J. (1996). Recycling versus incineration: An energy conservation analysis. Journal of Hazardous Materials, 47(1–3), 277–
293.
Mosier, N., Hendrickson, R., Dreschel, R., Dien, B., Bothast, R.,
Welch, G., & Ladisch, M. (2003, March). Principles and economics
of pretreating cellulose in water for ethanol production. In
Proceedings of the 225th American Chemical Society Meeting
(Vol. 103). BIOT Division.
Mudgett, R. E. (1986). Solid-state fermentations. In: A. L. Demain, &
N. A. Solomon (Eds.), Manual of industrial microbiology and
biotechnology (pp. 66–83). Washington DC, USA: American
Society of Microbiology.
Murphy, J. D., McKeogh, E., & Kiely, G. (2004).
Technical/economic/environmental analysis of biogas utilisation.
Applied Energy, 77(4), 407–427.
Nakamura, Y., & Sawada, T. (2003). Ethanol production from artificial
domestic household waste solubilized by steam explosion. Biotechnology and Bioprocess Engineering, 8(3), 205–209.
Neves, L., Ribeiro, R., Oliveira, R., & Alves, M. M. (2006).
Enhancement of methane production from barley waste. Biomass
and Bioenergy, 30(6), 599–603.
Nishida, A., & Eriksson, K. E. (1987). Formation, purification, and
partial characterisation of methanol oxidase, a H 2 O 2 -producing
enzyme in Phanerochaete chrysosporium. Biotechnology and
Applied Biochemistry, 9(4), 325–338.
Ouellet, M., Datta, S., Dibble, D. C., Tamrakar, P. R., Benke, P. I., Li,
C., et al. (2011). Impact of ionic liquid pretreated plant biomass on
Saccharomyces cerevisiae growth and biofuel production. Green
Chemistry, 13(10), 2743–2749.
Bioconversion of Food Waste into Biogas
93
S., et al. (2009). Wet disk milling pretreatment without sulfuric acid
for enzymatic hydrolysis of rice straw. Bioresource Technology,
100(10), 2706–2711.
Ho, K. S., & Chu, L. M. (2019). Characterization of food waste from
different sources in Hong Kong. Journal of the Air and Waste
Management Association, 69(3), 277–288.
Howard, R. L., Abotsi, E. L. J. R., Van Rensburg, E. J., & Howard, S. (2003).
Lignocellulose biotechnology: Issues of bioconversion and enzyme
production. African Journal of Biotechnology, 2(12), 602–619.
https://www.magnet.co.uk/advice-inspiration/blog/2018/February/
food-waste-around-the-world/. Retrieved from June 18, 2020.
https://www.statista.com/statistics/933059/per-capita-food-waste-ofselected-countries/. Retrieved from June 18, 2020.
Irshad, M., Bahadur, B. A., Anwar, Z., Yaqoob, M., Ijaz, A., & Iqbal,
H. M. N. (2012). Decolorization applicability of sol-gel
matrix-immobilized laccase produced from Ganoderma leucidum
using agro-industrial waste. BioResources, 7(3), 4249–4261.
Jansson, A. T., Patinvoh, R. J., Sárvári Horváth, I., & Taherzadeh, M.
J. (2019). Dry anaerobic digestion of food and paper industry wastes
at different solid contents. Fermentation, 5(2), 40.
Jayalakshmi, S., Joseph, K., & Sukumaran, V. (2009). Bio hydrogen
generation from kitchen waste in an inclined plug flow reactor.
International Journal of Hydrogen Energy, 34(21), 8854–8858.
Jecu, L. (2000). Solid state fermentation of agricultural wastes for
endoglucanase production. Industrial Crops and Products, 11(1),
1–5.
Jędrzejczyk, M., Soszka, E., Czapnik, M., Ruppert, A. M., & Grams,
J. (2019). Physical and chemical pretreatment of lignocellulosic
biomass. In Second and third generation of feedstocks (pp. 143–
196). Elsevier.
Jørgensen, H., Eriksson, T., Börjesson, J., Tjerneld, F., & Olsson, L.
(2003). Purification and characterization of five cellulases and one
xylanase from Penicillium brasilianum IBT 20888. Enzyme and
Microbial Technology, 32(7), 851–861.
Kaar, W. E., Gutierrez, C. V., & Kinoshita, C. M. (1998). Steam
explosion of sugarcane bagasse as a pretreatment for conversion to
ethanol. Biomass and Bioenergy, 14(3), 277–287.
Kabouris, J. C., Tezel, U., Pavlostathis, S. G., Engelmann, M.,
Dulaney, J., Gillette, R. A., et al. (2009). Methane recovery from the
anaerobic codigestion of municipal sludge and FOG. Bioresource
Technology, 100(15), 3701–3705.
Kelley, R. L., & Reddy, C. A. (1986). Purification and characterization
of glucose oxidase from ligninolytic cultures of Phanerochaete
chrysosporium. Journal of Bacteriology, 166(1), 269–274.
Kersten, P. J., & Kirk, T. K. (1987). Involvement of a new enzyme,
glyoxal oxidase, in extracellular H 2 O 2 production by Phanerochaete
chrysosporium. Journal of Bacteriology, 169(5), 2195–2201.
Kim, S. H., & Shin, H. S. (2008). Effects of base-pretreatment on
continuous enriched culture for hydrogen production from food waste.
International Journal of Hydrogen Energy, 33(19), 5266–5274.
Kim, H. J., Kim, S. H., Choi, Y. G., Kim, G. D., & Chung, T. H.
(2006a). Effect of enzymatic pretreatment on acid fermentation of
food waste. Journal of Chemical Technology & Biotechnology:
International Research in Process, Environmental & Clean Technology, 81(6), 974–980.
Kim, J. K., Oh, B. R., Chun, Y. N., & Kim, S. W. (2006b). Effects of
temperature and hydraulic retention time on anaerobic digestion of
food waste. Journal of Bioscience and Bioengineering, 102(4),
328–332.
Kivaisi, A. K., & Eliapenda, S. (1994). Pretreatment of bagasse and
coconut fibres for enhanced anaerobic degradation by rumen
microorganisms. Renewable Energy, 5(5–8), 791–795.
Koo, B. W., Kim, H. Y., Park, N., Lee, S. M., Yeo, H., & Choi, I. G.
(2011). Organosolv pretreatment of Liriodendron tulipifera and
simultaneous saccharification and fermentation for bioethanol
production. Biomass and Bioenergy, 35(5), 1833–1840.
Krause, D. O., Denman, S. E., Mackie, R. I., Morrison, M., Rae, A. L.,
Attwood, G. T., et al. (2003). Opportunities to improve fiber
degradation in the rumen: Microbiology, ecology, and genomics.
FEMS Microbiology Reviews, 27(5), 663–693.
Kuhad, R. C., Singh, A., & Eriksson, K. E. L. (1997). Microorganisms
and enzymes involved in the degradation of plant fiber cell walls. In
Biotechnology in the pulp and paper industry (pp. 45–125). Berlin,
Heidelberg: Springer.
Kumar, P., Barrett, D. M., Delwiche, M. J., & Stroeve, P. (2009).
Methods for pretreatment of lignocellulosic biomass for efficient
hydrolysis and biofuel production. Industrial and Engineering
Chemistry Research, 48(8), 3713–3729.
Laopaiboon, P., Thani, A., Leelavatcharamas, V., & Laopaiboon, L.
(2010). Acid hydrolysis of sugarcane bagasse for lactic acid
production. Bioresource Technology, 101(3), 1036–1043.
Linke, B. (2006). Kinetic study of thermophilic anaerobic digestion of
solid wastes from potato processing. Biomass and Bioenergy, 30
(10), 892–896.
Lonsane, B. K., Saucedo-Castaneda, G., Raimbault, M., Roussos, S.,
Viniegra-Gonzalez, G., Ghildyal, N. P., et al. (1992). Scale-up
strategies for solid state fermentation systems. Process Biochemistry, 27(5), 259–273.
Lu, X., Xi, B., Zhang, Y., & Angelidaki, I. (2011). Microwave
pretreatment of rape straw for bioethanol production: Focus on
energy efficiency. Bioresource Technology, 102(17), 7937–7940.
Malherbe, S., & Cloete, T. E. (2002). Lignocellulose biodegradation:
Fundamentals and applications. Reviews in Environmental Science
& Biotechnology, 1(2), 105–114.
McCarthy, A. J. (1987). Lignocellulose-degrading actinomycetes.
FEMS Microbiology Reviews, 3(2), 145–163.
Morris, J. (1996). Recycling versus incineration: An energy conservation analysis. Journal of Hazardous Materials, 47(1–3), 277–
293.
Mosier, N., Hendrickson, R., Dreschel, R., Dien, B., Bothast, R.,
Welch, G., & Ladisch, M. (2003, March). Principles and economics
of pretreating cellulose in water for ethanol production. In
Proceedings of the 225th American Chemical Society Meeting
(Vol. 103). BIOT Division.
Mudgett, R. E. (1986). Solid-state fermentations. In: A. L. Demain, &
N. A. Solomon (Eds.), Manual of industrial microbiology and
biotechnology (pp. 66–83). Washington DC, USA: American
Society of Microbiology.
Murphy, J. D., McKeogh, E., & Kiely, G. (2004).
Technical/economic/environmental analysis of biogas utilisation.
Applied Energy, 77(4), 407–427.
Nakamura, Y., & Sawada, T. (2003). Ethanol production from artificial
domestic household waste solubilized by steam explosion. Biotechnology and Bioprocess Engineering, 8(3), 205–209.
Neves, L., Ribeiro, R., Oliveira, R., & Alves, M. M. (2006).
Enhancement of methane production from barley waste. Biomass
and Bioenergy, 30(6), 599–603.
Nishida, A., & Eriksson, K. E. (1987). Formation, purification, and
partial characterisation of methanol oxidase, a H 2 O 2 -producing
enzyme in Phanerochaete chrysosporium. Biotechnology and
Applied Biochemistry, 9(4), 325–338.
Ouellet, M., Datta, S., Dibble, D. C., Tamrakar, P. R., Benke, P. I., Li,
C., et al. (2011). Impact of ionic liquid pretreated plant biomass on
Saccharomyces cerevisiae growth and biofuel production. Green
Chemistry, 13(10), 2743–2749.
Bioconversion of Food Waste into Biogas
93
