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Trash to treasure: electrocatalytic upcycling of polyethylene terephthalate (PET) microplastic to value-added products by Mn0.1Ni0.9Co2O4-δ RSFs spinel

Journal of Hazardous Materials 2023 58 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.
Yan Mao, Yan Mao, Shiying Fan, Shiying Fan, Xinyong Li, Jugong Shi, Jugong Shi, Mufan Wang, Xinyong Li, Mufan Wang, Zhaodong Niu, Guohua Chen Guohua Chen Guohua Chen

Summary

Researchers developed an electrocatalytic method using Mn0.1Ni0.9Co2O4 spinel catalysts to upcycle PET microplastics into valuable chemicals including formate, terephthalic acid, and potassium sulfate, offering a cost-effective strategy for converting plastic waste into useful products.

Polymers

Microplastic pollution has emerged as a pressing environmental issue of global concern due to its detrimental effects on the environment and ecology. Restricted to their characters of complex composition, it is a great challenge to propose a more cost-effective approach to achieve highly selective conversion of microplastic into add-value products. Here we demonstrate an upcycling strategy for converting PET microplastics into added-value chemicals (formate, terephthalic acid and KSO). PET is initially hydrolyzed in KOH solution to produce terephthalic acid and ethylene glycol, which is subsequently used as an electrolyte to produce formate at the anode. Meanwhile, the cathode undergoes hydrogen evolution reaction to produce H. Preliminary techno-economic analysis suggests that this strategy has certain economic feasibility and a novel MnNiCoO rod-shaped fiber (RSFs) catalyst we synthesized can achieve high Faradaic efficiency (> 95%) at 1.42 V vs. RHE with optimistic formate productivity. The high catalytic performance can be attributed to the doping of Mn changing the electronic structure and reducing the metal-oxygen covalency of NiCoO, reducing the lattice oxygen oxidation in spinel oxide OER electrocatalysts. This work not only put forward an electrocatalytic strategy for PET microplastic upcycling but also guides the design of electrocatalysts with excellent performance.

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