电合成
化学
乙醇酸
催化作用
产量(工程)
电化学
膜
化学工程
选择性
塑料废料
电极
蛋壳膜
纳米技术
铂金
组合化学
有机化学
工作(物理)
氧气
过程(计算)
无机化学
生物相容性材料
溶剂
环境友好型
膜反应器
电催化剂
废物管理
作者
H B Wu,Han Tian,Wenshu Luo,Y Huang,Xiangzhi Cui,Jianlin Shi
摘要
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 Co 3 O 4 -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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