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Impacts of Polylactic Acid Microplastics on Performance and Microbial Dynamics in Activated Sludge System

Sustainability 2023 3 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 35 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Shengwei Zhang, Mengbo Huang, Shengwei Zhang, Shengwei Zhang, Shengwei Zhang, Shengwei Zhang, Shengwei Zhang, Mingliang Fang Shengwei Zhang, Mengbo Huang, Dongqi Wang, Shengwei Zhang, Jiake Li, Dongqi Wang, Shengwei Zhang, Yuzhu Weng, Yuzhu Weng, Shengwei Zhang, Mingliang Fang Mingliang Fang Shengwei Zhang, Yuzhu Weng, Yuzhu Weng, Yuzhu Weng, Yuzhu Weng, Yuan Guo, Yuzhu Weng, Yuzhu Weng, Yuzhu Weng, Yuzhu Weng, Kailong Li, Kailong Li, Mingliang Fang Renjie Huang, Shengwei Zhang, Renjie Huang, Mingliang Fang Jiake Li, Shengwei Zhang, Yuan Guo, Shengwei Zhang, Mingliang Fang Mingliang Fang Mingliang Fang Mingliang Fang Chunbo Jiang, Chunbo Jiang, Zhe Wang, Zhe Wang, Hui Wang, Hui Wang, Haiyu Meng, Haiyu Meng, Mingliang Fang Yishan Lin, Mingliang Fang Mingliang Fang Yishan Lin, Mingliang Fang Mingliang Fang Mingliang Fang Jiake Li, Jiake Li, Mingliang Fang Mingliang Fang

Summary

Researchers examined the effects of polylactic acid (PLA) microplastics at different concentrations on activated sludge system performance, including nitrification, phosphorus removal, and extracellular polymeric substances (EPS). The study found that PLA microplastics disrupted microbial activity and pollutant removal performance in wastewater treatment under comparable conditions.

Polymers
Study Type Environmental

A large number of microplastics (MPs) have been found in various stages of wastewater treatment plants, which may affect the functional microbial activity in activated sludge and lead to unstable pollutant removal performance. In this study, the effects of different concentrations of polylactic acid microplastics (PLA MPs) on system performance, nitrification and phosphorus (P) removal activities, and extracellular polymeric substances (EPS) were evaluated. The results showed that under the same influent conditions, low concentrations (50 particles/(g TS)) of PLA MPs had no significant effect on effluent quality. The average removal efficiencies of chemical oxygen demand, phosphate, and ammonia were all above 80%, and the average removal efficiencies of total nitrogen remained above 70%. High concentrations (200 particles/(g TS)) of PLA MPs inhibited the activities of polyphosphate-accumulating organisms (PAOs) and nitrifying bacteria. The specific anaerobic P release rate decreased from 37.7 to 23.1 mg P/(g VSS·h), and the specific aerobic P uptake rate also significantly decreased. The specific ammonia oxidation rate decreased from 0.67 to 0.34 mg N/(g VSS·h), while the change in the specific nitrite oxidation rate was not significant. The dosing of PLA MPs decreased the total EPS and humic acid content. As the concentration of PLA MPs increased, microbial community diversity increased. The relative abundance of potential PAOs (i.e., Acinetobacter) increased from 0.08 to 12.57%, while the relative abundance of glycogen-accumulating organisms (i.e., Competibacter and Defluviicoccus) showed no significant changes, which would lead to improved P removal performance. The relative abundance of denitrifying bacteria (i.e., Pseudomonas) decreased from 95.43 to 58.98%, potentially contributing to the decline in denitrification performance.

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