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Novel integrated agricultural land management approach provides sustainable biomass feedstocks for bioplastics and supports the UK’s ‘net-zero’ target

Bibliographic Data

ID15549262
AuthorsYuanzhi Ni (0000-0001-9997-9172, Rothamsted Research, corresponding author), G M Richter (0000-0003-2180-9514, Rothamsted Research), Onesmus Mwabonje (0000-0003-2334-8504, Imperial College London), Aiming Qi (0000-0002-0784-9520, University of Hertfordshire), M Patel (0000-0002-3983-6003, University of Geneva), Martin K Patel, Jeremy Wood (0000-0002-1542-8144, Imperial College London, corresponding author)
Year2020
Volume16
Issue1
Pages014023-014023
Publication date2020-12-01
Peer ReviewedYes
Open AccessYes
TypeARTICLE
VenueEnvironmental Research Letters (JOURNAL)
Journal identifiersISSN: 1748-9326 • E-ISSN: 1748-9326
PublisherIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/abcf79
OpenAlexW3108789711
LanguageEN
References cited29

We investigate the potential in producing biodegradable bio-plastics to support the emergent ‘net-zero’ greenhouse gas (GHG) emissions targets in the UK. A ‘cradle to grave’ life cycle assessment was developed to evaluate GHG mitigation potentials of bio-based polybutylene succinate plastics produced from wheat straw-only (single feedstock) or wheat straw plus Miscanthus (mixed feedstocks) agricultural supply systems. For scenarios using mixed feedstocks, significant carbon mitigation potentials were identified at catchment and national levels (emission reduction of 30 kg CO 2 eq kg −1 plastic compared to petroleum-based alternatives), making the system studied a significant net carbon sink at marginal GHG abatement costs of £0.5–14.9 t −1 CO 2 eq. We show that an effective ‘net-zero’ transition of the UK’s agricultural sector needs spatially explicit, diversified and integrated cropping strategies. Such integration of perennial bio-materials into food production systems can unlock cost-effective terrestrial carbon sequestration. Research & Development and scale-up will lower costs helping deliver a sustainable bioeconomy and transition to ‘net-zero’

Agricultural engineering · Agriculture · Agronomy · Biomass (ecology · Carbon dioxide · Carbon sequestration · Economics · Greenhouse gas · Life-cycle assessment · Production (economics · Agriculture Sustainability and Environmental Impact · biodegradable polymer synthesis and properties · Bioeconomy and Sustainability Development · Engineering · Environmental Science · Ecology · Environmental Engineering

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