Biodegradation of bioplastics under aerobic and anaerobic aqueous conditions: Kinetics, carbon fate and particle size effect

Биодеградация биопластиков в аэробных и анаэробных водных условиях: кинетика, судьба углерода и влияние размера частиц
Octavio García‐Depraect, Raquel Lebrero, Sara Rodriguez-Vega, Sergio Bordel, Fernando Santos‐Beneit, Leonardo J. Martínez-Mendoza, Rosa Aragão Börner, Tim Börner, Raúl Muñoz
2021-11-02

aerobic and anaerobic aqueous conditionsbiodegradation kineticsbioplastic biodegradationcarbon fateparticle size effect
The biodegradation of PHB, PHBV, PBS, PBAT, PCL, PLA, and a PLA-PCL blend was compared under aerobic and anaerobic aqueous conditions assessing biodegradation kinetics, extent, carbon fate and particle size influence (in the range of 100-1000 µm). Under standard test conditions, PHB and PBHV were biodegraded anaerobically (83.9 ± 1.3% and 81.2 ± 1.7%, respectively) in 77 days or aerobically (83.0 ± 1.6% and 87.4 ± 7.5%) in 117 days, while PCL was only biodegraded (77.6 ± 2.4%) aerobically in 177 days. Apparent biomass growth accounted for 10 to 30.5% of the total initial carbon depending on the bioplastic and condition. Maximum aerobic and anaerobic biodegradation rates were improved up to 331 and 405%, respectively, at the lowest particle size tested (100-250 µm). This study highlights the usefulness of analysing biodegradation kinetics and carbon fate to improve both the development and testing of biodegradable materials, and waste treatments in the context of a circular bioeconomy.
1
Apparent biomass growth represented 10–30.5% of the initial bioplastic carbon, depending on polymer and degradation condition.
2
Kinetic and carbon-fate analyses are important for developing and evaluating biodegradable materials and waste-treatment processes.
3
PCL reached 77.6 ± 2.4% biodegradation only aerobically, requiring 177 days under the tested conditions.
4
PHB and PHBV achieved approximately 81–87% biodegradation under both anaerobic and aerobic aqueous conditions, with anaerobic degradation completed faster.
5
Reducing particle size to 100–250 µm increased maximum aerobic and anaerobic biodegradation rates by up to 331% and 405%, respectively.

PHB, PHBV, PBS, PBAT, PCL, PLA, and a PLA-PCL blend in aqueous aerobic and anaerobic biodegradation conditions

Biodegradation kinetics, extent, carbon fate, and particle-size effects of bioplastics under aerobic and anaerobic aqueous conditions

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2021-11-02
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Authors
Octavio García‐Depraect
Raquel Lebrero
Sara Rodriguez-Vega
Sergio Bordel
Fernando Santos‐Beneit
Leonardo J. Martínez-Mendoza
Rosa Aragão Börner
Tim Börner
Raúl Muñoz
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