Technology, 245, 1110–1121. https://doi.org/10.1016/j.biortech.
2017.09.056.
Chen, W. T., Zhang, Y., Lee, T. H., Wu, Z., Si, B., Lee, C. F. F., et al.
(2018). Renewable diesel blendstocks produced by hydrothermal
liquefaction of wet biowaste. Nature Sustainability, 1, 702–710.
https://doi.org/10.1038/s41893-018-0172-3.
Chen, J., Ma, X., Yu, Z., Deng, T., Chen, X., Chen, L., & Dai, M.
(2019). A study on catalytic co-pyrolysis of kitchen waste with tire
waste over ZSM-5 using TG-FTIR and Py-GC/MS. Bioresour
Technol, 289. https://doi.org/10.1016/j.biortech.2019.121585.
Olajumoke Abidemi O., & Chionyedua Theresa, O. (2014). Environmental fate of heavy metals in soil of Ido-Osun waste dump site,
Osogbo, Osun, Nigeria. American Journal of Environmental
Protection, 3, 1–4. https://doi.org/10.12691/env-3-1-1.
Choi, J., Zequine, C., Bhoyate, S., Lin, W., Li, X., Kahol, P., et al.
(2019). Waste Coffee Management: Deriving High-Performance
Supercapacitors Using Nitrogen-Doped Coffee-Derived Carbon. C–
J Carbon Research, 5, 44. https://doi.org/10.3390/c5030044.
Colón, J., Cadena, E., Pognani, M., Barrena, R., Sánchez, A., Font, X.,
et al. (2012). Determination of the energy and environmental
burdens associated with the biological treatment of source-separated
Municipal Solid Wastes. Energy & Environmental Science, 5,
5731–5741. https://doi.org/10.1039/c2ee01085b.
Cortright, R. D., Davda, R. R., & Dumesic, J. A. (2002). Hydrogen
from catalytic reforming of biomass-derived hydrocarbons in liquid
water. Nature, 418, 964–967. https://doi.org/10.1038/nature01009.
Dahadha, S., Amin, Z., Bazyar Lakeh, A. A., & Elbeshbishy, E. (2017).
Evaluation of different pretreatment processes of lignocellulosic
biomass for enhanced biomethane production. Energy & Fuels, 31,
10335–10347. https://doi.org/10.1021/acs.energyfuels.7b02045.
Dahiya, J. S., Singh, D., & Nigam, P. (1998). Characterisation of
laccase produced by Coniothyrium minitans. Journal of Basic
Microbiology, 38, 349–359. https://doi.org/10.1002/(SICI)15214028(199811)38:5/6%3c349:AID-JOBM349%3e3.0.CO;2-B.
Dai, Y., Sun, Q., Wang, W., Lu, L., Liu, M., Li, J., et al. (2018).
Utilizations of agricultural waste as adsorbent for the removal of
contaminants: A review. Chemosphere, 211, 235–253. https://doi.
org/10.1016/j.chemosphere.2018.06.179.
Das, S., Lee, S. H., Kumar, P., Kim, K. H., Lee, S. S., & Bhattacharya,
S. S. (2019). Solid waste management: Scope and the challenge of
sustainability. Journal of Cleaner Production, 228, 658–678.
https://doi.org/10.1016/j.jclepro.2019.04.323.
Dashtban, M., Schraft, H., & Qin, W. (2009). Fungal bioconversion of
lignocellulosic residues; Opportunities & perspectives. International Journal of Biological Sciences, 5, 578–595. https://doi.org/
10.7150/ijbs.5.578.
Datta, P., Mohi, G., & Chander, J. (2018). Biomedical waste
management in India: Critical appraisal. Journal of Laboratory
Physicians, 10, 006–014. https://doi.org/10.4103/JLP.JLP_89_17.
de Paula, R. G., Antoniêto, A. C. C., Ribeiro, L. F. C., Srivastava, N.,
O’Donovan, A., Mishra, P. K., Gupta, V. K., & Silva, R. N. (2019).
Engineered microbial host selection for value-added bioproducts
from lignocellulose. Biotechnol Advances, 37. https://doi.org/10.
1016/j.biotechadv.2019.02.003.
Degfie, T. A., Mamo, T. T., & Mekonnen, Y. S. (2019). Optimized
biodiesel production from waste cooking oil (WCO) using Calcium
Oxide (CaO) Nano-catalyst. Scientific Reports, 9, 1–8. https://doi.
org/10.1038/s41598-019-55403-4.
Deng, W., Zhang, Q., & Wang, Y. (2015). Catalytic transformation of
cellulose and its derived carbohydrates into chemicals involving
C-C bond cleavage. The Journal of Energy Chemistry, 24, 595–607.
https://doi.org/10.1016/j.jechem.2015.08.016.
Dessie, W., Zhang, W., Xin, F., Dong, W., Zhang, M., Ma, J., et al.
(2018). Succinic acid production from fruit and vegetable wastes
hydrolyzed by on-site enzyme mixtures through solid state
fermentation. Bioresource Technology, 247, 1177–1180. https://
doi.org/10.1016/j.biortech.2017.08.171.
Dolly, S., Pandey, A., Pandey, B. K., & Gopal, R. (2015). Process
parameter optimization and enhancement of photo-biohydrogen
production by mixed culture of Rhodobacter sphaeroides NMBL-02
and Escherichia coli NMBL-04 using Fe-nanoparticle. International
Journal of Hydrogen Energy, 40, 16010–16020. https://doi.org/10.
1016/j.ijhydene.2015.09.089.
Embaby, A. M., Masoud, A. A., Marey, H. S., Shaban, N. Z., &
Ghonaim, T. M. (2014). Raw agro-industrial orange peel waste as a
low cost effective inducer for alkaline polygalacturonase production
from Bacillus licheniformis SHG10. Springerplus, 3, 1–13. https://
doi.org/10.1186/2193-1801-3-327.
Fan, Y., Su, F., Li, K., Ke, C., & Yan, Y. (2017). Carbon nanotube
filled with magnetic iron oxide and modified with polyamidoamine
dendrimers for immobilizing lipase toward application in biodiesel
production. Scientific Reports, 7, 1–13. https://doi.org/10.1038/
srep45643.
Farmanbordar, S., Karimi, K., & Amiri, H. (2018). Municipal solid
waste as a suitable substrate for butanol production as an advanced
biofuel. Energy Conversion and Management, 157, 396–408.
https://doi.org/10.1016/j.enconman.2017.12.020.
Ferronato, N., & Torretta, V. (2019). Waste mismanagement in
developing countries: A review of global issues. International
Journal of Environmental Research and Public Health, 16. https://
doi.org/10.3390/ijerph16061060.
Filho, P. F. S., Brancoli, P., Bolton, K., Zamani, A., & Taherzadeh, M.
J. (2017). Techno-economic and life cycle assessment of wastewater
management from potato starch production: Present status and
alternative biotreatments. Fermentation 3. https://doi.org/10.3390/
fermentation3040056.
Gadhe, A., Sonawane, S. S., & Varma, M. N. (2015). Enhancement
effect of hematite and nickel nanoparticles on biohydrogen
production from dairy wastewater. International Journal of Hydrogen Energy, 40, 4502–4511. https://doi.org/10.1016/j.ijhydene.
2015.02.046.
Garlapati, V. K., Shankar, U., & Budhiraja, A. (2016). Bioconversion
technologies of crude glycerol to value added industrial products.
Biotechnology Reports, 9, 9–14. https://doi.org/10.1016/j.btre.2015.
11.002.
Ghasemian, M., Zilouei, H., & Asadinezhad, A. (2016). Enhanced
biogas and biohydrogen production from cotton plant wastes using
alkaline pretreatment. Energy & Fuels, 30, 10484–10493. https://
doi.org/10.1021/acs.energyfuels.6b01999.
Ghazi, I., Fernandez-Arrojo, L., Gomez De Segura, A., Alcalde, M.,
Plou, F. J., & Ballesteros, A. (2006). Beet sugar syrup and molasses
as low-cost feedstock for the enzymatic production of
fructo-oligosaccharides. Journal of Agricultural and Food Chemistry, 54, 2964–2968. https://doi.org/10.1021/jf053023b.
Gilbert, M., Yaguchi, M., Watson, D. C., Wong, K. K. Y., Breuil, C., &
Saddler, J. N. (1993). A comparison of two xylanases from the
thermophilic fungi Thielavia terrestris and Thermoascus crustaceus.
Applied Microbiology and Biotechnology, 40, 508–514. https://doi.
org/10.1007/BF00175740.
Ginésy, M., Rusanova-Naydenova, D., & Rova, U. (2017). Tuning of
the carbon-to-nitrogen ratio for the production of L-Arginine by
Escherichia coli. Fermentation, 3. https://doi.org/10.3390/
fermentation3040060.
Glaser, B., & Lehr, V. I. (2019). Biochar effects on phosphorus
availability in agricultural soils: A meta-analysis. Scientific Reports,
9, 1–9. https://doi.org/10.1038/s41598-019-45693-z.
Gomes, I., Gomes, J., Gomes, D. J., & Steiner, W. (2000). Simultaneous production of high activities of thermostable endoglucanase
16
A. M. Palve et al.
2017.09.056.
Chen, W. T., Zhang, Y., Lee, T. H., Wu, Z., Si, B., Lee, C. F. F., et al.
(2018). Renewable diesel blendstocks produced by hydrothermal
liquefaction of wet biowaste. Nature Sustainability, 1, 702–710.
https://doi.org/10.1038/s41893-018-0172-3.
Chen, J., Ma, X., Yu, Z., Deng, T., Chen, X., Chen, L., & Dai, M.
(2019). A study on catalytic co-pyrolysis of kitchen waste with tire
waste over ZSM-5 using TG-FTIR and Py-GC/MS. Bioresour
Technol, 289. https://doi.org/10.1016/j.biortech.2019.121585.
Olajumoke Abidemi O., & Chionyedua Theresa, O. (2014). Environmental fate of heavy metals in soil of Ido-Osun waste dump site,
Osogbo, Osun, Nigeria. American Journal of Environmental
Protection, 3, 1–4. https://doi.org/10.12691/env-3-1-1.
Choi, J., Zequine, C., Bhoyate, S., Lin, W., Li, X., Kahol, P., et al.
(2019). Waste Coffee Management: Deriving High-Performance
Supercapacitors Using Nitrogen-Doped Coffee-Derived Carbon. C–
J Carbon Research, 5, 44. https://doi.org/10.3390/c5030044.
Colón, J., Cadena, E., Pognani, M., Barrena, R., Sánchez, A., Font, X.,
et al. (2012). Determination of the energy and environmental
burdens associated with the biological treatment of source-separated
Municipal Solid Wastes. Energy & Environmental Science, 5,
5731–5741. https://doi.org/10.1039/c2ee01085b.
Cortright, R. D., Davda, R. R., & Dumesic, J. A. (2002). Hydrogen
from catalytic reforming of biomass-derived hydrocarbons in liquid
water. Nature, 418, 964–967. https://doi.org/10.1038/nature01009.
Dahadha, S., Amin, Z., Bazyar Lakeh, A. A., & Elbeshbishy, E. (2017).
Evaluation of different pretreatment processes of lignocellulosic
biomass for enhanced biomethane production. Energy & Fuels, 31,
10335–10347. https://doi.org/10.1021/acs.energyfuels.7b02045.
Dahiya, J. S., Singh, D., & Nigam, P. (1998). Characterisation of
laccase produced by Coniothyrium minitans. Journal of Basic
Microbiology, 38, 349–359. https://doi.org/10.1002/(SICI)15214028(199811)38:5/6%3c349:AID-JOBM349%3e3.0.CO;2-B.
Dai, Y., Sun, Q., Wang, W., Lu, L., Liu, M., Li, J., et al. (2018).
Utilizations of agricultural waste as adsorbent for the removal of
contaminants: A review. Chemosphere, 211, 235–253. https://doi.
org/10.1016/j.chemosphere.2018.06.179.
Das, S., Lee, S. H., Kumar, P., Kim, K. H., Lee, S. S., & Bhattacharya,
S. S. (2019). Solid waste management: Scope and the challenge of
sustainability. Journal of Cleaner Production, 228, 658–678.
https://doi.org/10.1016/j.jclepro.2019.04.323.
Dashtban, M., Schraft, H., & Qin, W. (2009). Fungal bioconversion of
lignocellulosic residues; Opportunities & perspectives. International Journal of Biological Sciences, 5, 578–595. https://doi.org/
10.7150/ijbs.5.578.
Datta, P., Mohi, G., & Chander, J. (2018). Biomedical waste
management in India: Critical appraisal. Journal of Laboratory
Physicians, 10, 006–014. https://doi.org/10.4103/JLP.JLP_89_17.
de Paula, R. G., Antoniêto, A. C. C., Ribeiro, L. F. C., Srivastava, N.,
O’Donovan, A., Mishra, P. K., Gupta, V. K., & Silva, R. N. (2019).
Engineered microbial host selection for value-added bioproducts
from lignocellulose. Biotechnol Advances, 37. https://doi.org/10.
1016/j.biotechadv.2019.02.003.
Degfie, T. A., Mamo, T. T., & Mekonnen, Y. S. (2019). Optimized
biodiesel production from waste cooking oil (WCO) using Calcium
Oxide (CaO) Nano-catalyst. Scientific Reports, 9, 1–8. https://doi.
org/10.1038/s41598-019-55403-4.
Deng, W., Zhang, Q., & Wang, Y. (2015). Catalytic transformation of
cellulose and its derived carbohydrates into chemicals involving
C-C bond cleavage. The Journal of Energy Chemistry, 24, 595–607.
https://doi.org/10.1016/j.jechem.2015.08.016.
Dessie, W., Zhang, W., Xin, F., Dong, W., Zhang, M., Ma, J., et al.
(2018). Succinic acid production from fruit and vegetable wastes
hydrolyzed by on-site enzyme mixtures through solid state
fermentation. Bioresource Technology, 247, 1177–1180. https://
doi.org/10.1016/j.biortech.2017.08.171.
Dolly, S., Pandey, A., Pandey, B. K., & Gopal, R. (2015). Process
parameter optimization and enhancement of photo-biohydrogen
production by mixed culture of Rhodobacter sphaeroides NMBL-02
and Escherichia coli NMBL-04 using Fe-nanoparticle. International
Journal of Hydrogen Energy, 40, 16010–16020. https://doi.org/10.
1016/j.ijhydene.2015.09.089.
Embaby, A. M., Masoud, A. A., Marey, H. S., Shaban, N. Z., &
Ghonaim, T. M. (2014). Raw agro-industrial orange peel waste as a
low cost effective inducer for alkaline polygalacturonase production
from Bacillus licheniformis SHG10. Springerplus, 3, 1–13. https://
doi.org/10.1186/2193-1801-3-327.
Fan, Y., Su, F., Li, K., Ke, C., & Yan, Y. (2017). Carbon nanotube
filled with magnetic iron oxide and modified with polyamidoamine
dendrimers for immobilizing lipase toward application in biodiesel
production. Scientific Reports, 7, 1–13. https://doi.org/10.1038/
srep45643.
Farmanbordar, S., Karimi, K., & Amiri, H. (2018). Municipal solid
waste as a suitable substrate for butanol production as an advanced
biofuel. Energy Conversion and Management, 157, 396–408.
https://doi.org/10.1016/j.enconman.2017.12.020.
Ferronato, N., & Torretta, V. (2019). Waste mismanagement in
developing countries: A review of global issues. International
Journal of Environmental Research and Public Health, 16. https://
doi.org/10.3390/ijerph16061060.
Filho, P. F. S., Brancoli, P., Bolton, K., Zamani, A., & Taherzadeh, M.
J. (2017). Techno-economic and life cycle assessment of wastewater
management from potato starch production: Present status and
alternative biotreatments. Fermentation 3. https://doi.org/10.3390/
fermentation3040056.
Gadhe, A., Sonawane, S. S., & Varma, M. N. (2015). Enhancement
effect of hematite and nickel nanoparticles on biohydrogen
production from dairy wastewater. International Journal of Hydrogen Energy, 40, 4502–4511. https://doi.org/10.1016/j.ijhydene.
2015.02.046.
Garlapati, V. K., Shankar, U., & Budhiraja, A. (2016). Bioconversion
technologies of crude glycerol to value added industrial products.
Biotechnology Reports, 9, 9–14. https://doi.org/10.1016/j.btre.2015.
11.002.
Ghasemian, M., Zilouei, H., & Asadinezhad, A. (2016). Enhanced
biogas and biohydrogen production from cotton plant wastes using
alkaline pretreatment. Energy & Fuels, 30, 10484–10493. https://
doi.org/10.1021/acs.energyfuels.6b01999.
Ghazi, I., Fernandez-Arrojo, L., Gomez De Segura, A., Alcalde, M.,
Plou, F. J., & Ballesteros, A. (2006). Beet sugar syrup and molasses
as low-cost feedstock for the enzymatic production of
fructo-oligosaccharides. Journal of Agricultural and Food Chemistry, 54, 2964–2968. https://doi.org/10.1021/jf053023b.
Gilbert, M., Yaguchi, M., Watson, D. C., Wong, K. K. Y., Breuil, C., &
Saddler, J. N. (1993). A comparison of two xylanases from the
thermophilic fungi Thielavia terrestris and Thermoascus crustaceus.
Applied Microbiology and Biotechnology, 40, 508–514. https://doi.
org/10.1007/BF00175740.
Ginésy, M., Rusanova-Naydenova, D., & Rova, U. (2017). Tuning of
the carbon-to-nitrogen ratio for the production of L-Arginine by
Escherichia coli. Fermentation, 3. https://doi.org/10.3390/
fermentation3040060.
Glaser, B., & Lehr, V. I. (2019). Biochar effects on phosphorus
availability in agricultural soils: A meta-analysis. Scientific Reports,
9, 1–9. https://doi.org/10.1038/s41598-019-45693-z.
Gomes, I., Gomes, J., Gomes, D. J., & Steiner, W. (2000). Simultaneous production of high activities of thermostable endoglucanase
16
A. M. Palve et al.
