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Article ? AI-assigned paper type based on the abstract. Classification may not be perfect — flag errors using the feedback button. Tier 2 ? Original research — experimental, observational, or case-control study. Direct primary evidence. Environmental Sources Gut & Microbiome Marine & Wildlife Remediation Sign in to save

Piezoelectric Disinfection of Water Co-Polluted by Bacteria and Microplastics Energized by Water Flow

ACS ES&T Water 2022 43 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 45 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Lei Mai Lei Mai Lei Mai Lei Mai Shenyu Lan, Lei Mai Lei Mai Lei Mai Lei Mai Lei Mai Lei Mai Eddy Y. Zeng, Lei Mai Lei Mai Eddy Y. Zeng, Xiwang Ke, Eddy Y. Zeng, Lei Mai Lei Mai Lei Mai Lei Mai Eddy Y. Zeng, Lei Mai Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Zhi Li, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Lei Mai Lei Mai Lei Mai Eddy Y. Zeng, Eddy Y. Zeng, Lei Mai Lei Mai Lei Mai Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Mingshan Zhu, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Lei Mai Eddy Y. Zeng, Lei Mai Eddy Y. Zeng, Lei Mai Lei Mai Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Lei Mai Eddy Y. Zeng, Eddy Y. Zeng, Eddy Y. Zeng, Lei Mai Lei Mai

Summary

Researchers demonstrated that molybdenum disulfide piezoelectric material could inactivate both E. coli and Enterococcus faecalis bacteria on microplastic surfaces under water flow, offering a promising approach to simultaneously address microplastic and microbial co-contamination in water.

Polymers

The presence of microplastics in the aquatic environment, as a vector for colonization and proliferation of harmful microorganisms, brings a great challenge for water disinfection. This study investigates piezoelectric inactivation of Gram-negative bacteria Escherichia coli (E. coli) and Gram-positive bacteria Enterococcus faecalis (E. faecalis) on the surface of microplastics under water flow by using molybdenum disulfide as piezoelectric material. The piezoelectric sterilization capacity was evaluated by comparing different polymer types and sizes of microplastics, in which 4.5 log10 CFU mL–1 E. coli cells were reduced for 50 μm PVC particles at a water flow speed of 80 rpm in 20 min. Piezoelectric disinfection was dependent on water flow rates and treatment time and was feasible in riverine water containing authentic microplastics and in a spiral reactor that simulated natural water flow. Reactive oxygen species were generated via water flowing over the piezoelectric material, resulting in the inactivation of bacteria on the surface of microplastics. This study highlighted the great potential of water flow as a “green” source of energy and elucidated a new opportunity of piezoelectric disinfection in aqueous media containing microplastics.

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