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Updated: May 31, 2026

Preparation of Carbon Fiber and Bamboo Fiber Reinforced Poly (butylene Adipate-co-terephthalate) Foams by Supercritical Carbon Dioxide Foaming
Published on: October 10, 2025
Biodegradation of poly (butylene adipate-co-terephthalate)/poly (lactic acid) under food waste composting: CO2
Jingying Shang1, Ziyi Liu1, Shunli Wang2
1School of Life Science and Medical Engineering, Anhui University, 111 Jiulong Road, Hefei, 230601, China.
Abstract:
Substituting conventional plastics with biodegradable plastics represents a promising mitigation strategy for plastic pollution. However, the non-degraded bioplastics can partially result in a heterogeneous, diffusion-limited, and metabolically suppressed state in the compost, thus leading to the composting unstability. This study employed three levels of additions (2, 8 and 16%) of poly (butylene adipate-co-terephthalate)/poly (lactic acid) (PBAT/PLA) bioplastics to canteen food waste to investigate the impact of biodegradable plastics addition on bioplastic degradation efficiency and compost quality. Results showed that 2, 8, and 16% of PBAT/PLA addition had the biodegradation rates of 59.49, 20.99, and 16.72%, respectively. Water-soluble substances and humic acid (5.32 g/kg and 0.94 g/kg) are generated from the treatment of 2% addition, however, 16% of PBAT/PLA addition significantly reduced the formation of water-soluble substances and humic acid with 4.89 g/kg and 0.73 g/kg. Finally, the potential application scenarios for this co-compost are discussed. It is suggested to be used as a soil conditioner in urban greening and public spaces, thereby reducing municipal maintenance and fertilizer procurement costs. This work provides operational thresholds for efficient biodegradable plastic waste treatment via co-composting and advances sustainable development paradigms within the plastics industry, aligning with circular economy principles.
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