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Understanding the fragmentation of microplastics into nano-plastics and removal of nano/microplastics from wastewater using membrane, air flotation and nano-ferrofluid processes

Chemosphere 2021 181 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 50 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Sirajum Monira, Biplob Kumar Pramanik Sirajum Monira, Sirajum Monira, Sirajum Monira, Sirajum Monira, Sirajum Monira, Biplob Kumar Pramanik Sirajum Monira, Sirajum Monira, Sirajum Monira, Biplob Kumar Pramanik Sagor Kumar Pramanik, Biplob Kumar Pramanik Sirajum Monira, Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Sirajum Monira, Biplob Kumar Pramanik Sagor Kumar Pramanik, Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik Biplob Kumar Pramanik

Summary

This review described how nanoplastics form from fragmentation of larger microplastics in wastewater and examined the performance of membrane filtration, air flotation, and nano-ferrofluid processes for removing nano- and microplastics from wastewater, finding nano-ferrofluid treatment most effective for the smallest particles.

Polymers
Study Type Environmental

Nano/microplastics (NPs/MPs), a tiny particle of plastic pollution, are known as one of the most important environmental threats to marine ecosystems. Wastewater treatment plants can act as entrance routes for NPs/MPs to the aquatic environment as they breakdown of larger fragments of the plastic component during the treatment process; therefore, it is necessary to remove NPs/MPs during the wastewater treatment process. In this study, understanding the effect of water shear force on the fragmentation of larger size MPs into smaller MPs and NPs and their removal by air flotation and nano-ferrofluid (i.e., magnetite and cobalt ferrite particle as a coagulant) and membrane processes were investigated as a proof-of-concept study. It is found that a two-blade mechanical impeller could fragment MPs from 75, 150 and 300 μm into mean size NPs/MPs of 0.74, 1.14 and 1.88 μm, respectively. Results showed that the maximum removal efficiency of polyethylene, polyvinyl chloride and polyester was 85, 82 and 69%, respectively, in the air flotation process. Increasing the dose of behentrimonium chloride surfactant from 2 to 10 mg/L improved the efficiency of the air flotation process for NPs/MPs removal. It is also found that the removal efficiency of NPs/MPs by the air flotation system depends on solution pH, size, and types of NPs/MPs. This study also found a less significant removal efficiency of NPs/MPs by both types of ferrofluid used in this study with an average removal of 43% for magnetite and 55% for cobalt ferrite. All three plastics tested had similar removal efficiency by the nano-ferrofluid particles, meaning that this removal technique does not rely on the plastic component type. Among all the process tested, both ultrafiltration and microfiltration membrane processes were highly effective, removing more than 90% of NPs/MPs fragment particles. Overall, this study has confirmed the effectiveness of using air flotation and the membrane process to remove NPs/MPs from wastewater.

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