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Change Biol., 24, 1405, 10.1111\u002Fgcb.14020\nBarboza, 2018, Marine microplastic debris: an emerging issue for food security, food safety and human health, Mar. Pollut. Bull., 133, 336, 10.1016\u002Fj.marpolbul.2018.05.047\nSmith, 2018, Microplastics in seafood and the implications for human health, Curr. Environ. Health Rep., 5, 375, 10.1007\u002Fs40572-018-0206-z\nde Souza Machado, 2018, Impacts of microplastics on the soil biophysical environment, Environ. Sci. Technol., 52, 9656, 10.1021\u002Facs.est.8b02212\nPrata, 2018, Airborne microplastics: consequences to human health?, Environ. Pollut., 234, 115, 10.1016\u002Fj.envpol.2017.11.043\n2019\nXanthos, 2017, International policies to reduce plastic marine pollution from single-use plastics (plastic bags and microbeads): a review, Mar. Pollut. 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Eng., 4, 1985, 10.1021\u002Facssuschemeng.5b01252\nAlam, 2017, A novel, cost-effective and eco-friendly method for preparation of textile fibers from cellulosic pulps, Carbohydr. Polym., 173, 253, 10.1016\u002Fj.carbpol.2017.06.005\nWilliams, 2017\nHorvat\nPhilp, 2014, OECD policies for bioplastics in the context of a bioeconomy, 2013, Ind. Biotechnol., 10, 19, 10.1089\u002Find.2013.1612\nMcKechnie, 2015, Environmental and financial implications of ethanol as a bioethylene feedstock versus as a transportation fuel, Environ. Res. Lett., 10, 124018, 10.1088\u002F1748-9326\u002F10\u002F12\u002F124018\nFiorentino, 2017, Chemicals from biomass: technological versus environmental feasibility. A review, Biofuels Bioprod. Biorefin., 11, 195, 10.1002\u002Fbbb.1729\nStraathof, 2017, Potential of commodity chemicals to become bio-based according to maximum yields and petrochemical prices, Biofuels Bioprod. Biorefin., 11, 798, 10.1002\u002Fbbb.1786\nSpekreijse, 2019\nPawelzik, 2013, Critical aspects in the life cycle assessment (LCA) of bio-based materials–reviewing methodologies and deriving recommendations, Resour. Conserv. Recycl., 73, 211, 10.1016\u002Fj.resconrec.2013.02.006\nTsiropoulos, 2015, Life cycle impact assessment of bio-based plastics from sugarcane ethanol, J. Clean. Prod., 90, 114, 10.1016\u002Fj.jclepro.2014.11.071\nKarvinen, 2015\nFiorentino, 2014, Life cycle assessment of Brassica carinata biomass conversion to bioenergy and platform chemicals, J. Clean. Prod., 66, 174, 10.1016\u002Fj.jclepro.2013.11.043\nEerhart, 2012, Replacing fossil based PET with biobased PEF; process analysis, energy and GHG balance, Energy Environ. Sci., 5, 6407, 10.1039\u002Fc2ee02480b\nLiptow, 2012, A comparative life cycle assessment study of polyethylene based on sugarcane and crude oil, J. Ind. Ecol., 16, 420, 10.1111\u002Fj.1530-9290.2011.00405.x\nAlvarenga, 2013, Life cycle assessment of bioethanol-based PVC: Part 1: attributional approach, Biofuels Bioprod. Biorefin., 7, 386, 10.1002\u002Fbbb.1405\nAlvarenga, 2013, Life cycle assessment of bioethanol-based PVC: Part 2: consequential approach, Biofuels Bioprod. Biorefin., 7, 396, 10.1002\u002Fbbb.1398\nHottle, 2013, Sustainability assessments of bio-based polymers, Polym. Degrad. Stab., 98, 1898, 10.1016\u002Fj.polymdegradstab.2013.06.016\nCok, 2014, Succinic acid production derived from carbohydrates: an energy and greenhouse gas assessment of a platform chemical toward a bio-based economy, Biofuels Bioprod. Biorefin., 8, 16, 10.1002\u002Fbbb.1427\nDunn, 2015\nWeiss, 2012, A review of the environmental impacts of biobased materials, J. Ind. Ecol., 16, S169, 10.1111\u002Fj.1530-9290.2012.00468.x\nPatel, 2006\nSpierling, 2018, Bio-based plastics. A review of environmental, social and economic impact assessments, J. Clean. 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