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A Bioinspired OH-Sponge Catalyst Enables Ultrawide-Voltage and Durable Electrosynthesis of Glycolic Acid from Plastic
Han Wu1,2,3, Han Tian2, Wenshu Luo2,3
1School of Chemistry and Materials Science, Hangzhou Institute for Advanced Study, University of Chinese Academy of Sciences, Hangzhou 310024, Zhejiang, China.
Abstract:
The electrochemical upcycling of plastic waste into high-value chemicals using renewable electricity is a promising route toward a circular economy. However, the electrocatalytic oxidation of polyethylene terephthalate (PET)-derived ethylene glycol (EG) to glycolic acid (GA) is severely limited by the narrow voltage window and rapid deactivation of noble-metal catalysts, primarily due to competitive hydroxyl adsorption and intermediate poisoning. Inspired by the spatial compartmentalization in enzymatic catalysis, we decouple reactant activation and oxygen species management through a spinel Co3O4-mediated OH-sponge effect, which buffers local OH- concentration, thus preventing Pt-oxidation and supplies active oxygen species enabling targeted conversion to GA. The resulting catalyst achieves an unprecedented GA selectivity of >95% over an ultrawide potential range of 0.5-1.5 V (vs RHE). It demonstrates exceptional durability, operating stably for over 2000 h in a half-cell and >650 h in a membrane electrode assembly. Techno-economic analysis indicates the process can yield a net profit of approximately $720 per ton of PET waste processed. This work provides a biomimetic design principle that simultaneously addresses the challenges of selectivity, stability, and operational flexibility, advancing the viability of electrochemical plastic upcycling.
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