Yaashikaa, P.R. and Kumar, P. Senthil (2022): Valorization of agro-industrial wastes for biorefinery process and circular bioeconomy: A critical review. Published in:
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Abstract
Energy recovery from waste resources is a promising approach towards environmental consequences. In the prospect of environmental sustainability, utilization of agro-industrial waste residues as feedstock for biorefinery processes have gained widespread attention. In the agro-industry, various biomasses are exposed to different unit processes for offering value to various agro-industrial waste materials. Agro-industrial wastes can generate a substantial amount of valuable products such as fuels, chemicals, energy, electricity, and by-products. This paper reviews the methodologies for valorization of agro-industrial wastes and their exploitation for generation of renewable energy products. In addition, management of agro-industrial wastes and products from agro-industrial wastes have been elaborated. The waste biorefinery process using agro-industrial wastes does not only offer energy, it also offers environmentally sustainable modes, which address effective management of waste streams. This review aims to highlight the cascading use of biomass from agro-industrial wastes into the systemic approach for economic development.
Item Type: | MPRA Paper |
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Original Title: | Valorization of agro-industrial wastes for biorefinery process and circular bioeconomy: A critical review |
Language: | English |
Keywords: | Biorefinery; Agro-industrial waste; Valorization; Circular economy; Energy |
Subjects: | Q - Agricultural and Natural Resource Economics ; Environmental and Ecological Economics > Q0 - General |
Item ID: | 112234 |
Depositing User: | Rong-Gang Cong |
Date Deposited: | 08 Mar 2022 03:25 |
Last Modified: | 08 Mar 2022 03:25 |
References: | Abdullah, L.C., Wong, L.L., Saari, M., Salmiaton, A., Abdul Rashid, M.S., 2007. Particulate matter dispersion and haze occurrence potential studies at a local palm oil mill. Int. J. Environ. Sci. Technol. 4 (2), 271–278. Abid, K., Jabri, J., Beckers, Y., Yaich, H., Malek, A., Rekhis, J., Kamoun, M., 2019. Effects of exogenous fibrolytic enzymes on the ruminal fermentation of agro-industrial byproducts. S. Afr. J. Anim. Sci. 49, 612–618. Adesra, A., Srivastava, V.K., Varjani, S., 2021. Valorization of dairy wastes: Integrative approaches for value added products. Indian Journal of Microbiology 61, 270–278. Abdou Alio, M., Marcati, A., Pons, A., Vial, C., 2021. Modeling and simulation of a sawdust mixture-based integrated biorefinery plant producing bioethanol. Bioresour. Technol. 325, 124650. Alvarez-Guzm´an, C.L., Balderas-Hern´andez, V.E., De Leon-Rodriguez, A., 2020. Coproduction of hydrogen, ethanol and 2,3-butanediol from agro-industrial residues by the Antarctic psychrophilic GA0F bacterium. Int. J. Hydrog. Energy 45 (49), 26179–26187. Anwar, Z., Gulfraz, M., Irshad, M., 2014. Agro-industrial lignocellulosic biomass a key to unlock the future bio-energy: A brief review. J. Radiat. Res. Appl. Sci. 7 (2), 163–173. Arun, K.B., Madhavan, A., Sindhu, R., Binod, P., Pandey, A., R, R., Sirohi, R., 2020. Remodeling agro-industrial and food wastes into value-added bioactives and biopolymers. Ind. Crops Prod. 154, 112621. Asagbra, A., Oyewole, O.B., Odunfa, S.A., 2005. Production of oxytetracycline from agricultural wastes using Streptomyces spp. Niger. Food J. 23, 174–182. Atilano-Camino, M.M., ´Alvarez-Valencia, L.H., García-Gonz´alez, A., García-Reyes, R.B., 2020. Improving laccase production from Trametes versicolor using lignocellulosic residues as cosubstrates and evaluation of enzymes for blue wastewater biodegradation. J. Environ. Manag. 275, 111231. Beesigamukama, D., Mochoge, B., Korir, N.K., Fiaboe, K.K.M., Nakimbugwe, D., Khamis, F.M., Subramanian, S., Wangu, M.M., Dubois, T., Ekesi, S., Tanga, C.M., 2021. Low-cost technology for recycling agro-industrial waste into nutrient-rich organic fertilizer using black soldier fly. Waste Manage. 119, 183–194. Behnood, R., Anvaripour, B., Jaafarzadeh, N., Farasati, M., 2016. Oil spill sorption using raw and acetylated sugarcane bagasse. J. Cent. South. Univ. 23 (7), 1618–1625. Buenrostro-Figueroa, J., Ascacio-Vald´es, A., Sepúlveda, L., De la Cruz, R., Prado-Barrag´an, A., Aguilar-Gonz´alez, M.A., Rodríguez, R., Aguilar, C.N., 2014. Potential use of different agro-industrial by products as supports for fungal ellagitannase production under solid state fermentation. Food Bioprod. Process 92 (4), 376–382. Buruiana, C.-T., Vizireanu, C., Garrote, G., Parajo, J.C., 2014. Optimization of corn stover biorefinery for coproduction of oligomers and second generation bioethanol using non-isothermal autohydrolysis. Ind. Crops Prod. 54, 32–39. Calderon-Cortes, J.F., Gonzalez-Vizcarra, V.M., Petriz-Celaya, Y., Pujol, L.C., Barreras, A., Plascencia, A., 2018. Energy value of unfermented dried grape pomace as substitute of alfalfa hay in diets for growing lambs. Austral. J. Vet. Sci. 50, 59–63. Carolin, C.F., Kumar, P.S., Saravanan, A., Joshiba, G.J., Naushad, M.u., 2017. Efficient techniques for the removal of toxic heavy metals from aquatic environment: A review. J. Environ. Chem. Eng. 5 (3), 2782–2799. Çetin, Y.D., Durusoy, T., 2017. Co-Combustion characteristics and kinetics of cotton stalk and polypropylene blends. Am. J. Analyt. Chem. 08 (04), 280–293. Chantron, S., Aekkawatchai, N., Chunya, P., Oontawee, S., Khumphai, P., Charoenrat., 2021. Lignocellulosic bacteria isolated from organic rice fields for enzyme production using agricultural wastes: Screening, medium optimization, and coculture. Biocatal Agric Biotechnol. 33, 101988. Cherubini, F., 2010. The biorefinery concept: Using biomass instead of oil for producing energy and chemicals. Energy Convers. Manag. 51 (7), 1412–1421. Cong, R.-G., Thomsen, M., 2021. Review of ecosystem services in a bio-based circular economy and governance mechanisms. Ecosyst. Serv. 50, 101298. Cremonez, P.A., Teleken, J.G., Weiser Meier, T.R., Alves, H.J., 2021. Two-Stage anaerobic digestion in agroindustrial waste treatment: A review. J. Environ. Manage. 281, 111854. Cusenza, M.A., Longo, S., Cellura, M., Guarino, F., Messineo, A., Mistretta, M., Volpe, M., 2021. Environmental assessment of a waste-to-energy practice: The pyrolysis of agro-industrial biomass residues. Sustain. Prod. Consum. 28, 866–876. de Oliveira, R.L., de Carvalho, G.G.P., Oliveira, R.L., Tosto, M.S.L., Santos, E.M., Ribeiro, R.D.X., Silva, T.M., Correia, B.R., de Rufino, L.M.A., 2017. Palm kernel cake obtained from biodiesel production in diets for goats: feeding behavior and physiological parameters. Trop. Anim. Health Prod. 49 (7), 1401–1407. Dedovic, N., Igic, S., Janic, T., Matic-Kekic, S., Ponjican, O., Tomic, M., Savin, L., 2012. Efficiency of small scale manually fed boilers — mathematical models. Energies 5, 1470–1489. Deiana, A.C., Gimenez, M.G., R´omoli, S., Sardella, M.F., Sapag, K., 2014. Batch and column studies for the removal of lead from aqueous solutions using activated carbons from viticultural industry wastes. Adsorp. Sci. Technol. 32 (2-3), 181–195. Deshavath, N.N., Dasu, V.V., Goud, V.V., Rao, P.S., 2017. Development of dilute sulfuric acid pretreatment method for the enhancement of xylose fermentability. Biocatal. Agric. Biotechnol. 11, 224–230. Dilipkumar, M., Rajasimman, M., Rajamohan, N., 2014. Utilization of copra waste for the solid state fermentatative production of inulinase in batch and packed bed reactors. Carbohydr. Polym. 102, 662–668. Dragone, G., Kerssemakers, A.A.J., Driessen, J.L.S.P., Yamakawa, C.K., Brumano, L.P., Mussatto, S.I., 2020. Innovation and strategic orientations for the development of advanced biorefineries. Bioresour. Technol. 302, 122847. Encinar, J.M., Nogales-Delgado, S., S´anchez, N., 2021. Pre-esterification of high acidity animal fats to produce biodiesel: A kinetic study. Arab. J. Chem. 14 (4), 103048. Fang, Y., Paul, M.C., Varjani, S., Li, X., Park, Y.K., You, S., 2021. Concentrated solar thermochemical gasification of biomass: Principles, applications, and development. Renewable & Sustainable Energy Reviews 150, 111484. Gajula, C., Chandel, A.K., Konakalla, R., Rudravaram, R., Pogaku, R., Mangamoori, L.N., 2011. Fermentation of groundnut shell enzymatic hydrolysate for fuel ethanol production by free and Sorghum stalks immobilized cells of Pichia stipitis NCIM 3498. Int. J. Chem. React. Eng. 9 Garadimani, K.R., Raju, G.U., Kodancha, K.G., 2015. Study on mechanical properties of corn cob particle and E-glass fiber reinforced hybrid polymer composites. Am. J. Mater. Sci. 5, 86–91. Gouvea, B.M., Torres, C., Franca, A.S., Oliveira, L.S., Oliveira, E.S., 2009. Feasibility of ethanol production from coffee husks. Biotechnol. Lett. 31 (9), 1315–1319. Guida, M.Y., Hannioui, A., 2017. Properties of bio-oil and bio-char produced by sugar cane bagasse pyrolysis in a stainless steel tubular reactor. Prog. Agric. Eng. Sci. 13 (1), 13–33. He, K., Zhang, J., Zeng, Y., 2019. Knowledge domain and emerging trends of agricultural waste management in the field of social science: A scientometric review. Sci. Total. Environ. 670, 236–244. Hiloidhari, M., Das, D., Baruah, D.C., 2014. Bioenergy potential from crop residue biomass in India. Renew. Sustain. Energy Rev. 32, 504–512. Imran, M., Arshad, M.S., Butt, M.S., Kwon, J.-H., Arshad, M.U., Sultan, M.T., 2017. Mangiferin: a natural miracle bioactive compound against lifestyle related disorders. Lipids Health Dis. 16, 84. Ingale, S., Joshi, S.J., Gupte, A., 2014. Production of bioethanol using agricultural waste: banana pseudo stem. Braz. J. Microbiol. 45, 885–892. Irshad, M., Anwar, Z., Afroz, A., 2012. Characterization of Exo 1, 4-β glucanase produced from Trichoderma Viridi through solid-state bio-processing of orange peel waste. Adv. Biosci. Biotechnol. 3, 580–584. Islam, A., Singh, P.K., Mausam, K., 2021. Identification and recommendation of waste materials and 3R practices in developing industries. Mater. Today: Proc. 45, 3318–3322. Jablonsky, M., Skulcova, A.B., Kamenska, L., Vrska, M., Sima, J., 2015. Deep eutectic solvents: Fractionation of wheat straw. Bioresources 10, 8039–8047. Jahnavi, N., Kanmani, K., Kumar, P.S., Varjani, S., 2020. Conversion of waste plastics into low emissive hydrocarbon fuel using catalyst produced from biowaste. Environmental Science and Pollution Research 1–8. Kalogeris, E., Christakopoulos, P., Katapodis, P., Alexiou, A., Vlachou, S., Kekos, D., Macris, B.J., 2003. Production and characterization of cellulolytic enzymes from the thermophilic fungus Thermoascus aurantiacus under solid state cultivation of agricultural wastes. Process Biochem. 38 (7), 1099–1104. Karthyani, S., Pandey, A., Devendra, L.P., 2020. Delignification of cotton stalks using sodium cumene sulfonate for bioethanol production. Biofuels. 11 (4), 431–440. Khoshnevisan, B., Duan, N., Tsapekos, P., Awasthi, M.K., Liu, Z., Mohammadi, A., Angelidaki, I., Tsang, D.C.W., Zhang, Z., Pan, J., Ma, L., Aghbashlo, M., Tabatabaei, M., Liu, H., 2021. A critical review on livestock manure biorefinery technologies: Sustainability, challenges, and future perspectives. Renew. Sustain. Energy Rev. 135, 110033. Kosov, V F, Lavrenov, V A, Zaichenko, V M, 2015. Simulation of a process for the twostage thermal conversion of biomass into the synthesis gas. J. Phys. Conf. Ser. 653, 012031. Koyande, A.K., Chew, K.W., Lim, J.-W., Lam, M.-K., Ho, Y.-C., Show, P.-L., 2020. Biorefinery of Chlorella sorokiniana using ultra sonication assisted liquid triphasic flotation system. Bioresour. Technol. 303, 122931. Kpalo, S.Y., Zainuddin, M.F., Manaf, L.A., Roslan, A.M., 2020. Production and characterization of hybrid briquettes from corncobs and oil palm trunk bark under a low pressure densification technique. Sustainability 12, 2468. Krongtaew, C., Messner, K., Ters, T., Fackler, K., 2010. Characterization of key parameters for biotechnological lignocellulose conversion assessed by FT-NIR spectroscopy. Part I: Qualitative analysis of pretreated straw. Bioresources 5, 2063–2080. Kumar, A., Kumar, N., Baredar, P., Shukla, A., 2015. A review on biomass energy resources, potential, conversion and policy in India. Renew. Sustain. Energy Rev. 45, 530–539. Kundariya, N., Mohanty, S.S., Varjani, S., Ngo, H.H., Wong, J.W.C., Taherzadeh, M.J., Chang, J.S., Ng, H.Y., Kim, S.H., Bui, X.T., 2021. A review on integrated approaches for municipal solid waste for environmental and economical relevance: Monitoring tools, technologies, and strategic innovations. Bioresource Technology 342, 125982. Leite, P., Silva, C., Salgado, J.M., Belo, I., 2019. Simultaneous production of lignocellulolytic enzymes and extraction of antioxidant compounds by solid-state fermentation of agro-industrial wastes. Ind Crops Prod. 137, 315–322. Leong, H.Y., Chang, C.-K., Khoo, K.S., Chew, K.W., Chia, S.R., Lim, J.W., Chang, J.-S., Show, P.L., 2021. Waste biorefinery towards a sustainable circular bioeconomy: a solution to global issues. Biotechnol. Biofuels 14, 87. Li, Q., Lei, J., Zhang, R., Li, J., Xing, J., Gao, F., Gong, F., Yan, X., Wang, D., Su, Z., Ma, G., 2013. Efficient decolorization and deproteinization using uniform polymer microspheres in the succinic acid biorefinery from bio-waste cotton (Gossypium hirsutum L.) stalks. Bioresour. Technol. 135, 604–609. Lim, S.-H., Ibrahim, D., Omar, I.C., 2012. Oil palm frond for the production of bioethanol. Int. J. Biochem. Biotechnol. 1, 007–011. Liu, C., van der Heide, E., Wang, H., Li, B., Yu, G., Mu, X., 2013. Alkaline twin-screw extrusion pretreatment for fermentable sugar production. Biotechnol. Biofuels 6, 97. L´opez-Linares, J.C., García-Cubero, M.T., Coca, M., Lucas, S., 2021. A biorefinery approach for the valorization of spent coffee grounds to produce antioxidant compounds and biobutanol. Biomass Bioenerg. 147, 106026. Ma, H., Liu, W.-W., Chen, X., Wu, Y.-J., Yu, Z.-L., 2009. Enhanced enzymatic saccharification of rice straw by microwave pretreatment. Bioresour. Technol. 100 (3), 1279–1284. Macias-Corral, M., Samani, Z., Hanson, A., Smith, G., Funk, P., Yu, H., Longworth, J., 2008. Anaerobic digestion of municipal solid waste and agricultural waste and the effect of co-digestion with dairy cow manure. Bioresour. Technol. 99 (17), 8288–8293. Maiti, S., Sarma, S.J., Brar, S.K., Bihan, Y.L., Drogui, P., Buelna, G., Verma, M., 2016. Agro-industrial wastes as feedstock for sustainable bio-production of butanol by Clostridium beijerinckii. Food Bioprod. Process. 98, 217–226. Markande, A.R., Patel, D., Varjani, S., 2021. A review on Biosurfactants: Properties, Applications and Current Developments. Bioresour. Technol. 330, 124963 Mishra, B., Varjani, S., Agarwal, D.C., Mandal, S.K., Ngo, H.H., Taherzadeh, M.J., Chang, J.S., You, S., Guo, W., 2020. Engineering biocatalytic material for the remediation of pollutants: A comprehensive review. Environmental Technology & Innovation 20, 101063. Mohamed, H.A., Mohamed, B.E., Ahmed, K.E., 2015. Physicochemical properties of Tamarind (Tamarindus indica) seed polysaccharides. J. Food Process Technol. 6, 452. Mohanty, S.S., Koul, Y., Varjani, S., Pandey, A., Ngo, H.H., Chang, J.S., Wong, J.W.C., Bui, X.T., 2021. A critical review on various feedstocks as sustainable substrates for biosurfactants production: A way towards cleaner production. Microbial Cell Factories 20, 120. Mohapatra, S., Ranjan Mishra, R., Nayak, B., Chandra Behera, B., Das Mohapatra, P.K., 2020. Development of co-culture yeast fermentation for efficient production of biobutanol from rice straw: A useful insight in valorization of agro industrial residues. Bioresour. Technol. 318, 124070. Mopuri, R., Islam, Md.S., 2017. Medicinal plants and phytochemicals with antiobesogenic potentials: A review. Biomed. Pharmacother. 89, 1442–1452. Morales, A., Gullon, B., Davila, I., Eibes, G., Labidi, J., Gullon, P., 2018. Optimization of alkaline pretreatment for the co-production of biopolymer lignin and bioethanol from chestnut shells following a biorefinery approach. Ind Crops Prod. 124, 582–592. Mostafa, N.A., Farag, A.A., Abo-dief, H.M., Tayeb, A.M., 2018. Production of biodegradable plastic from agricultural wastes. Arab. J. Chem. 11 (4), 546–553. Motasemi, F., Salema, A.A., Afzal, M.T., 2015. Microwave dielectric properties of agricultural biomass at high temperature in an inert environment. Transactions of the ASABE. 58, 869–877. Munasinghe, P.C., Khanal, S.K., 2010. Biomass-derived syngas fermentation into biofuels: opportunities and challenges. Bioresour. Technol. 101 (13), 5013–5022. Munusamy, K., Somani, R.S., Bajaj, H.C., 2011. Tamarind seeds carbon: preparation and methane uptake. BioRes. 6 (1), 537–551. Mushimiyimana, I., Tallapragada, P., 2016. Bioethanol production from agro wastes by acid hydrolysis and fermentation process. J. Sci. Ind. Res. 75, 383–388. Nagarajan, D., Varjani, S., Lee, D.J., Chang, J.S., 2021. Sustainable aquaculture and animal feed from microalgae - nutritive value and techno-functional components. Renewable & Sustainable Energy Reviews 150, 111549. Naidu, Y., Siddiqui, Y., Idris, A.S., 2020. Comprehensive studies on optimization of lingohemicellulolytic enzymes by indigenous white rot hymenomycetes under solid-state cultivation using agro-industrial wastes. J Environ Manage. 259, 110056 Naqvi, S.R., Ali, I., Nasir, S., Ali Ammar Taqvi, S., Atabani, A.E., Chen, W.-H., 2020. Assessment of agro-industrial residues for bioenergy potential by investigating thermo-kinetic behavior in a slow pyrolysis process. Fuel. 278, 118259. Nayak, A., Bhushan, B., 2019. An overview of the recent trends on the waste valorization techniques for food wastes. J. Environ. Manage. 233, 352–370. Negi, S., Banerjee, R., 2009. Characterization of amylase and protease produced by Aspergillus awamori in a single bioreactor. Food Res. Int. 42 (4), 443–448. Ng, H.S., Kee, P.E., Yim, H.S., Chen, P.-T., Wei, Y.-H., Chi-Wei Lan, J., 2020. Recent advances on the sustainable approaches for conversion and reutilization of food wastes to valuable bioproducts. Bioresour. Technol. 302, 122889. Onilude, A.A., Fadaunsi, I.F., Garuba, E.O., 2012. Inulinase production by Saccharomyces sp. in solid state fermentation using wheat bran as substrate. Ann. Microbiol. 62 (2), 843–848. Orzua, M.C., Mussatto, S.I., Contreras-Esquivel, J.C., Rodriguez, R., de la Garza, H., Teixeira, J.A., Aguilar, C.N., 2009. Exploitation of agro industrial wastes as immobilization carrier for solid-state fermentation. Ind Crops Prod. 30 (1), 24–27. Pacioni, T.R., Soares, D., Domenico, M.D., Rosa, M.F., Moreira, R. de F.P.M., Jose, H.J., 2016. Bio-syngas production from agro-industrial biomass residues by steam gasification. Waste Manage. 58, 221-229. Paepatung, N., Nopharatana, A., Songkasiri, W., 2009. Bio-methane potential of biological solid materials and agricultural wastes. As. J. Energy Env. 10, 19–27. Pan, S-Y., Tsai, C-Y., Liu, C-W., Wang, S-W., Kim, H., Fan, C., 2021. Anaerobic codigestion of agricultural wastes toward circular bioeconomy. iScience 24, 102704. Pandey, A., Soccol, C.R, Nigam, P., Soccol, V.T, 2000. Biotechnological potential of agroindustrial residues. I: sugarcane bagasse. Bioresour. Technol. 74 (1), 69–80. Panesar, R., Kaur, S., Panesar, P.S., 2015. Production of microbial pigments utilizing agro-industrial waste: a review. Curr. Opin. Food Sci. 1, 70–76. Parada, M.P., Osseweijer, P., Duque, J.A.P., 2017. Sustainable biorefineries, an analysis of practices for incorporating sustainability in biorefinery design. Ind. Crops Prod. 106, 105–123. Patel, G.B., Shah, K.R., Shindhal, T., Rakholiya, P., Varjani, S., 2021. Process parameter studies by central composite design of response surface methodology for lipase activity of newly obtained actinomycete. Environmental Technology & Innovation 23, 101724. Perdani, M.S., Margaretha, G., Sahlan, M., Hermansyah, H., 2020. Solid state fermentation method for production of laccase enzyme with bagasse, cornstalk and rice husk as substrates for adrenaline biosensor. Energy Rep 6, 336–340. Pooja, G., Kumar, P.S., Prasannamedha, G., Varjani, S., Dai-Viet, N. Vo., 2021. Sustainable approach on removal of toxic metals from electroplating industrial wastewater using dissolved air flotation. J Environ. Manag. 295, 113147 Prasad, S., Singh, A., Korres, N.E., Rathore, D., Sevda, S., Pant, D., 2020. Sustainable utilization of crop residues for energy generation: A life cycle assessment (LCA) perspective. Bioresour. Technol. 303, 122964. Rajendran, N., Gurunathan, B., Han, J., Krishna, S., Ananth, A., Venugopal, K., Sherly Priyanka, R.B., 2021. Recent advances in valorization of organic municipal waste into energy using biorefinery approach, environment and economic analysis. Bioresour. Technol. 337, 125498. Rao, P., Rathod, V., 2019. Valorization of food and agricultural waste: A step towards greener future. Chem. Rec. 19 (9), 1858–1871. Rapagna, S., Gallucci, K., Foscolo, P.U., 2018. Olivine, dolomite and ceramic filters in one vessel to produce clean gas from biomass. Waste Manag. 71, 792–800. Rashid, J.I.A., Samat, N., Yusoff, W.M.W., 2013. Studies on extraction of mannanase enzyme by Aspergillus terreus SUK-1 from fermented palm kernel cake. Pak. J. Biol. Sci. 16 (18), 933–938. Rehman, S., Khairul Islam, M., Khalid Khanzada, N., Kyoungjin An, A., Chaiprapat, S., Leu, S.-Y., 2021. Whole sugar 2,3-butanediol fermentation for oil palm empty fruit bunches biorefinery by a newly isolated Klebsiella pneumoniae PM2. Bioresour. Technol. 333, 125206. Rene, E.R., Ge, J., Kumar, G., Singh, R.P., Varjani, S., 2020. Resource recovery from wastewater, solid waste, and waste gas: engineering and management aspects. Environmental Science and Pollution Research 1–3. Rodriguez, C., Gordillo, G., 2011. Adiabatic gasification and pyrolysis of coffee husk using air-steam for partial oxidation. J. Combust. 2011, 1–9. Rodriguez, L.A., Toro, M.E., Vazquez, F., Correa-Daneri, M.L., Gouiric, S.C., Vallejo, M. D., 2010. Bioethanol production from grape and sugar beet pomaces by solid-state fermentation. Int. J. Hydrog. Energy 35, 5914–5917. Sadh, Pardeep Kumar, Duhan, Surekha, Duhan, Joginder Singh, 2018. Agro-industrial wastes and their utilization using solid state fermentation: a review. Bioresour. Bioprocess. 5 (1) Saini, Jitendra Kumar, Saini, Reetu, Tewari, Lakshmi, 2015. Lignocellulosic agriculture wastes as biomass feedstocks for second-generation bioethanol production: concepts and recent developments. 3. Biotech 5 (4), 337–353. Sala, Arnau, Vittone, Silvana, Barrena, Raquel, S´anchez, Antoni, Artola, Adriana, 2021. Scanning agro-industrial wastes as substrates for fungal biopesticide production: Use of Beauveria bassiana and Trichoderma harzianum in solid-state fermentation. J. Environ. Manage. 295, 113113. Salim, A.A., Grbavcic, S., Sekuljica, N., Stefanovic, A., Tanaskovic, S.J., Lukovic, N., Knezevic-Jugovic, Z., 2017. Production of enzymes by a newly isolated Bacillus sp. TMF-1 in solid state fermentation on agricultural by-products: The evaluation of substrate pretreatment methods. Bioresour. Technol. 228, 193–200. Santos, R.M., Santos, A.O., Sussuchi, E.M., Nascimento, J.S., Lima, A.S., Freitas, L.S., 2015. Pyrolysis of mangaba seed: Production and characterization of bio-oil. Bioresour. Technol. 196, 43–48. Saravanan, A., Kumar, P.S., Varjani, S., Jeevanantham, S., Yaashikaa, P.R., Thamarai, P., Abirami, B., George, C.S., 2021. A Review on Algal-Bacterial Symbiotic System for Effective Treatment of Wastewater. Chemosphere 271, 129540. Saravanan, A., Kumar, P.S., Yashwanthraj, M., 2017. Sequestration of toxic Cr(VI) ions from industrial wastewater using waste biomass: A review. Desal. Water Treat. 68, 245–266. Saravanan, P., Muthuvelayudham, R., Viruthagiri, T., 2012. Application of statistical design for the production of cellulase by Trichoderma reesei using mango peel. Enzyme Res. 2012, 1–7. Sauve, S., Bernard, S., Sloan, P., 2016. Environmental sciences, sustainable development and circular economy: Alternative concepts for trans-disciplinary research. Environ. Dev. 17, 48–56. Schwarz, D., Schoenenwald, A.K.J., Dorrstein, J., Sterba, J., Kahoun, D., Fojtikova, P., Vilimek, J., Schieder, D., Zollfrank, C., Sieber, V., 2018. Biosynthesis of poly-3- hydroxybutyrate from grass silage by a two-stage fermentation process based on an integrated biorefinery concept. Bioresour. Technol. 269, 237–245. Serna-Díaz, M.G., Mercado-Flores, Y., Jim´enez-Gonz´alez, A., Anducho-Reyes, M.A., Medina-Marín, J., Seck Tuoh-Mora, J.C., T´ellez-Jurado, A., 2020. Use of barley straw as a support for the production of conidiospores of Trichoderma harzianum. Biotechnol. Rep. 26, e00445. Shah, Anil V., Srivastava, Vijay Kumar, Mohanty, Swayansu Sabyasachi, Varjani, Sunita, 2021. Municipal solid waste as a sustainable resource for energy production: Stateof- the-art review. J Environ Chem Eng. 9 (4), 105717. Shahid, Muhammad Kashif, Batool, Ayesha, Kashif, Ayesha, Nawaz, Muhammad Haq, Aslam, Muhammad, Iqbal, Nafees, Choi, Younggyun, 2021. Biofuels and biorefineries: Development, application and future perspectives emphasizing the environmental and economic aspects. J. Environ. Manage. 297, 113268. Sharma, B., Ingalls, R.G., Jones, C.L., Huhnke, R.L., Khanchi, A., 2013. Scenario optimization modeling approach for design and management of biomass-tobiorefinery supply chain system. Bioresour. Technol. 150, 163–171. Shen, Y., Wang, J., Ge, X., Chen, M., 2016. By-products recycling for syngas cleanup in biomass pyrolysis – An overview. Renew. Sustain. Energy Rev. 59, 1246–1268. Siddiqui, O., Dincer, I., 2021. Sustainable utilization of agricultural bio-waste for multigeneration of electricity, heating, cooling and freshwater. J. Clean. Prod. 319, 128540. Singh, B., Singh, J.P., Kaur, A., Singh, N., 2018. Phenolic compounds as beneficial phytochemicals in pomegranate (Punica granatum L.) peel: A review. Food Chem. 261, 75–86. Siwal, Samarjeet Singh, Zhang, Qibo, Devi, Nishu, Saini, Adesh Kumar, Saini, Vipin, Pareek, Bhawna, Gaidukovs, Sergejs, Thakur, Vijay Kumar, 2021. Recovery processes of sustainable energy using different biomass and wastes. Renew. Sustain. Energy Rev. 150, 111483. Sosa-Martínez, Jazel, Balagurusamy, Nagamani, Benavente-Vald´es, Juan Roberto, Monta˜nez, Julio, Morales-Oyervides, Lourdes, 2021. Process performance improvement for the simultaneous production of ligninolytic enzymes in solid culture using agricultural wastes through the Taguchi method. J Environ Manage 293, 112966. Sridhar, Adithya, Kapoor, Ashish, Senthil Kumar, Ponnusamy, Ponnuchamy, Muthamilselvi, Balasubramanian, Sivasamy, Prabhakar, Sivaraman, 2021. Conversion of food waste to energy: A focus on sustainability and life cycle assessment. Fuel. 302, 121069. Su, C., Qi, L., Cai, D., Chen, B., Chen, H., Zhang, C., Si, Z., Wang, Z., Li, G., Qin, P., 2020. Integrated ethanol fermentation and acetone-butanol-ethanol fermentation using sweet sorghum bagasse. Renew. Energy 162, 1125–1131. Suganthi, R., Benazir, J.F., Santhi, R., Kumar, R.V., Hari, A., Meenakshi, N., Nidhiya, K. A., Kavitha, G., Lakshmi, R., 2011. Amylase production by Aspergillus niger under solid state fermentation using agro-industrial wastes. Intern. J. Eng. Sci. Technol. 3, 1756–1763. Sun, H.Y., Li, J., Zhao, P., Peng, M., 2011. Banana peel: A novel substrate for cellulase production under solid-state fermentation. Afr. J. Biotechnol. 10, 17887–17890. Tajmirriahi, Mina, Momayez, Forough, Karimi, Keikhosro, 2021. The critical impact of rice straw extractives on biogas and bioethanol production. Bioresour. Technol. 319, 124167. Talekar, S., Patti, A.F., Vijayraghavan, R., Arora, A., 2018. An integrated green biorefinery approach towards simultaneous recovery of pectin and polyphenols coupled with bioethanol production from waste pomegranate peels. Bioresour. Technol. 266, 322–334. Tirpanalan, O., Reisinger, M., Smerilli, M., Huber, F., Neureiter, M., Kneifel, W., Novalin, S., 2015. Wheat bran biorefinery – An insight into the process chain for the production of lactic acid. Bioresour. Technol. 180, 242–249. Topakas, E., Kalogeris, E., Kekos, D., Macris, B.J., Christakopoulos, P., 2004. Production of phenolics from corn cobs by coupling enzymic treatment and solid state fermentation. Eng. Life Sci. 4 (3), 283–286. Tripathi, K.D., 2008. Antimicrobial drugs. Essentials of medical pharmacology, 6th edn. Jaycee Brothers Medical Publishers Ltd, New Delhi, p. 710. Tumuluru, J.S., 2015. Comparison of chemical composition and energy property of torrefied switchgrass and corn stover. Front. Energy Res. 3 Ugwu, S.N., Enweremadu, C.C., 2020. Ranking of energy potentials of agro-industrial wastes: Bioconversion and thermo-conversion approach. Energy Rep. 6, 2794–2802. Usmani, Zeba, Sharma, Minaxi, Awasthi, Abhishek Kumar, Sivakumar, Nallusamy, Lukk, Tiit, Pecoraro, Lorenzo, Thakur, Vijay Kumar, Roberts, Dave, Newbold, John, Gupta, Vijai Kumar, 2021. Bioprocessing of waste biomass for sustainable product development and minimizing environmental impact. Bioresour. Technol. 322, 124548. Varjani, Sunita J., 2017. Microbial degradation of petroleum hydrocarbons. Bioresource Technology 223, 277–286. Varjani, Sunita, Kumar, Gopalakrishnan, Rene, Eldon R., 2019. Developments in biochar application for pesticide remediation: Current knowledge and future research directions. J Environ. Manag. 232, 505–513. Varjani, S., Lee, D.J., Zhang, Q, 2020a. Valorizing agricultural biomass for sustainable development: Biological engineering aspects. Bioengineered, 11 (1), 522-523 (2020) Varjani, Sunita, Pandey, Ashok, Upasani, Vivek N., 2020b. Oilfield waste treatment using novel hydrocarbon utilizing bacterial consortium - A microcosm approach. Science of The Total Environment 745, 141043. Varjani, S., Pandey, A., Upasani, V.N., 2021a. Petroleum sludge polluted soil remediation: Integrated approach involving novel bacterial consortium and nutrient application. Science of The Total Environment 750, 142934. Varjani, S., Shah, A.V., Vyas, S., Srivastava, V.K., 2021b. Processes and Prospects on Valorizing Solid Waste for the production of Valuable Products Employing Bioroutes: A systematic review. Chemosphere 282, 130954. Varjani, Sunita, Upasani, Vivek N., 2019. Influence of abiotic factors, natural attenuation, bioaugmentation and nutrient supplementation on bioremediation of petroleum crude contaminated agricultural soil. J Environ. Manag. 245, 358–366. Varjani, S., Upasani, V.N., 2021. Bioaugmentation of Pseudomonas aeruginosa NCIM 5514 - A novel oily waste degrader for treatment of petroleum hydrocarbons. Bioresour. Technol 319, 124240. Viveka, R., Varjani, S., Nakkeeran, E., 2020. Valorization of cassava waste for pullulan production by Aureobasidium pullulans MTCC 1991. Energy and Environment 1–17. Wang, Ailong, Wang, Yu, Jiang, Tianyi, Li, Lixiang, Ma, Cuiqing, Xu, Ping, 2010. Production of 2,3-butanediol from corncob molasses, a waste by-product in xylitol production. Appl. Microbiol. Biotechnol. 87 (3), 965–970. Wang, B., Dong, F., Chen, M., Zhu, J., Tan, J., Fu, X., Wang, Y., Chen, S., 2016. Advances in recycling and utilization of agricultural wastes in china: Based on environmental risk, crucial pathways, influencing factors, policy mechanism. Procedia Environ. Sci. 31, 12–17. Xu, Ling, Sun, Ke, Wang, Feng, Zhao, Liting, Hu, Jianhua, Ma, Haile, Ding, Zhongyang, 2020. Laccase production by Trametes versicolor in solid-state fermentation using tea residues as substrate and its application in dye decolorization. J. Environ. Manag. 270, 110904. Yaashikaa, P.R., Kumar, P. Senthil, Saravanan, A., Varjani, Sunita, Ramamurthy, Racchana, 2020. Bioconversion of municipal solid waste into biobased products: A review on valorisation and sustainable approach for circular bioeconomy. Sci. Total Environ. 748, 141312. Yaashikaa, P.R., Kumar, P.S., Varjani, S.J., Saravanan, A., 2019. Advances in production and application of biochar from lignocellulosic feedstocks for remediation of environmental pollutants. Bioresour. Technol 292, 122030. Yang, S.Q., Xiong, H., Yang, H.Y., Yan, Q.J., Jiang, Z.Q., 2015. High-level production of β-1,3–1,4-glucanase by Rhizomucor miehei under solid-state fermentation and its potential application in the brewing industry. J. Appl. Microbiol. 118 (1), 84–91. Yin, Jun-Shuai, Liang, Qiu-Li, Li, Dong-Mei, Sun, Zhong-Tao, 2013. Optimization of production conditions for β-mannanase using apple pomace as raw material in solidstate fermentation. Ann. Microbiol. 63 (1), 101–108. Yogalakshmi, K.N., Devi, T.P., Sivashanmugam, P., Kavitha, S., Kannah, Y.R., Sunita Varjani, Adish Kumar, S., Kumar, G., Banu, R.J., 2022. Lignocellulosic biomassbased pyrolysis: A comprehensive review. Chemosphere 286, 131824. Younas, R., Hao, S., Zhang, L., Zhang, S., 2017. Hydrothermal liquefaction of rice straw with NiO nanocatalyst for bio-oil production. Renew. Energy 113, 532–545. Yuan, R., Yu, S., Shen, Y., 2019. Pyrolysis and combustion kinetics of lignocellulosic biomass pellets with calcium-rich wastes from agro-forestry residues. Waste manage. 87, 86–96. Zhang, Bin, Zhan, Baorui, Bao, Jie, 2021. Reframing biorefinery processing chain of corn fiber for cellulosic ethanol production. Ind. Crops Prod. 170, 113791. Zhou, X., Xu, Y., 2019. Integrative process for sugarcane bagasse biorefinery to coproduce xylooligosaccharides and gluconic acid. Bioresour. Technol. 282, 81–87. |
URI: | https://mpra.ub.uni-muenchen.de/id/eprint/112234 |