微塑料
淀粉
高密度聚乙烯
生物可分解塑胶
材料科学
生物膜
可生物降解聚合物
聚乙烯
聚合物
生物降解
食品科学
制浆造纸工业
化学工程
化学
复合材料
细菌
环境化学
有机化学
生物
工程类
遗传学
作者
Ruiqi Bao,Jingrun Pu,Chaolin Xie,Tariq Mehmood,Wei Chen,Liu Gao,Wenlu Lin,Yuanyuan Su,Xubing Lin,Licheng Peng
标识
DOI:10.1016/j.jhazmat.2022.128891
摘要
The use of biodegradable plastics (BPs) has been widely promoted in recent years, but before their complete degradation, the phase of microplastics (MPs) is inevitable. However, little information concerning the production of MPs from blended polymers is available. This study aimed to explore the characteristics of MPs produced from blended plastics and the development of biofilms on plastic surfaces under long-term aging. Here, three blended materials (i.e., PBAT (53%)+PLA (10%)+Starch (20%), PBAT (80%)+Starch (20%), HDPE (60%)+CaCO3 (40%)) were aged for 90 days in air, deionized (DI) water and seawater. The results showed massive production of MPs (9653 ± 3920-20,348 ± 5857 items/g) from blended plastics accompanied by a large quantity of flocculent substances during 90 days aging period. Furthermore, the richness of bacteria communities on hydrophobic plastics (i.e., PBAT (53%)+PLA (10%)+Starch (20%), PBAT (80%)+Starch (20%)) was higher than hydrophilic plastics (i.e., HDPE (60%)+CaCO3 (40%)), and bacterial communities attached to blended plastics exhibited significantly variation with aging times. Overall, promoting the marketable application of blended plastics is risky if their environmental behavior is not effectively addressed.
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