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Insights into Mechanism of Hypochlorite-induced Functionalization of Polymers towards Separating BFRs-contained Components from Microplastics.

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Surface functionalization of polymers is significant to an emerging flotation technique for separation of microplastics towards the recycling of plastic wastes. In this study, the hypochlorite-induced functionalization of polymers, including… Click to show full abstract

Surface functionalization of polymers is significant to an emerging flotation technique for separation of microplastics towards the recycling of plastic wastes. In this study, the hypochlorite-induced functionalization of polymers, including ABS, PMMA, PS, and PVC polymers, was intensively investigated. Afterward, its emerging application in flotation separation of microplastic mixtures was assessed based on Box-Behnken design of response surface methodology. The functionalization favorably induced decreases in the contact angle and zeta potential of polymers, suggesting hydrophilic and negatively charged surfaces. Particularly, the functionalization of ABS polymers was the most effective, leading to the obviously decreased contact angle (from 92.5° to 67.8°) and zeta potential (from -26.4 mV to -41.7 mV) at neutral condition. The major mechanism for these variations was the oxidation of sp3-C and butenyl group by hydroxyl radical and the hydrolysis of cyano group, which introduced the hydroxyl, carboxyl, and amide groups and rough topographies on the surface of ABS polymers. Oxygen functionalities introduced on the surfaces of other polymers were far less than that of ABS polymers. This selectivity inspired us to apply the functionalization in flotation separation of ABS microplastics from microplastic mixtures. After functionalization, ABS microplastics showed a significantly decreased floatability in flotation tests since hydrophilic surface was repulsive to the adhesion of air bubbles. An empirical model was built to optimize the separation efficiency using the overall desirability function. Under optimum conditions, ABS microplastics were efficiently separated, and its removal rate, recovery, and purity were 99.8%, 99.8%, and > 99.9%, respectively. These findings provide significant insights into the mechanism for the functionalization of polymers, and show a promising prospect for pollution control of plastic wastes.

Keywords: hypochlorite induced; induced functionalization; functionalization; insights mechanism; functionalization polymers

Journal Title: ACS applied materials & interfaces
Year Published: 2020

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