Agri-Food Wastes for Bioplastics: European Prospective on Possible Applications in Their Second Life for a Circular Economy - PubMed
- ️Sat Jan 01 2022
Review
Agri-Food Wastes for Bioplastics: European Prospective on Possible Applications in Their Second Life for a Circular Economy
Annamaria Visco et al. Polymers (Basel). 2022.
Abstract
Agri-food wastes (such as brewer's spent grain, olive pomace, residual pulp from fruit juice production, etc.) are produced annually in very high quantities posing a serious problem, both environmentally and economically. These wastes can be used as secondary starting materials to produce value-added goods within the principles of the circular economy. In this context, this review focuses on the use of agri-food wastes either to produce building blocks for bioplastics manufacturing or biofillers to be mixed with other bioplastics. The pros and cons of the literature analysis have been highlighted, together with the main aspects related to the production of bioplastics, their use and recycling. The high number of European Union (EU)-funded projects for the valorisation of agri-food waste with the best European practices for this industrial sector confirm a growing interest in safeguarding our planet from environmental pollution. However, problems such as the correct labelling and separation of bioplastics from fossil ones remain open and to be optimised, with the possibility of reuse before final composting and selective recovery of biomass.
Keywords: EU financed projects; European Community trend; biopolymer; biowaste; circular economy; upcycle.
Conflict of interest statement
The authors declare no conflict of interest.
Figures

Examples of bio-based and fossil-based polymers are subdivided into biodegradable and not biodegradable types.

European fossil-based plastic market.

European bioplastic production capacity from 2019 and projections until 2025.

PLA’s life cycle.

European Beer Producers (Eurostat 2020) and Breweries geographical distribution.

Economic data of EU beer production, consumption, import/export, and direct employment for year 2019.
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References
-
- European Bioplastics Market Update 2020: Bioplastics Continue to Become Mainstream as the Global Bioplastics Market Is Set to Grow by 36 Percent over the Next 5 Years. [(accessed on 26 April 2022)]. Available online: https://www.european-bioplastics.org/market-update-2020-bioplastics-cont...
-
- Shafiee S., Topal E. When will fossil fuel reserves be diminished? Energy Policy. 2009;37:181–189. doi: 10.1016/j.enpol.2008.08.016. - DOI
-
- Payne J., McKeown P., Jones M.D. Stability. A circular economy approach to plastic waste. Polym. Degrad. Stab. 2019;165:170–181. doi: 10.1016/j.polymdegradstab.2019.05.014. - DOI
-
- Huysman S., De Schaepmeester J., Ragaert K., Dewulf J., De Meester S. Performance indicators for a circular economy: A case study on post-industrial plastic waste. Resour. Conserv. Recycl. 2017;120:46–54. doi: 10.1016/j.resconrec.2017.01.013. - DOI
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