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Continuous Glycolic Acid Electrosynthesis Enabled by Ethylene Glycol-Mediated PET Valorization Using Nanoporous PdCu Catalysts.

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JACS Au 2026 Vol.6(3) p. 1727-1738 OA
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Li Y, Zhang WY, Kang D, Zhang Q, Qin X, Kim J

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Electrochemical valorization of poly-(ethylene terephthalate) (PET) into glycolic acid (GA) mediated by ethylene glycol monomers offers a promising approach for upcycling waste plastic.

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APA Li Y, Zhang WY, et al. (2026). Continuous Glycolic Acid Electrosynthesis Enabled by Ethylene Glycol-Mediated PET Valorization Using Nanoporous PdCu Catalysts.. JACS Au, 6(3), 1727-1738. https://doi.org/10.1021/jacsau.5c01615
MLA Li Y, et al.. "Continuous Glycolic Acid Electrosynthesis Enabled by Ethylene Glycol-Mediated PET Valorization Using Nanoporous PdCu Catalysts.." JACS Au, vol. 6, no. 3, 2026, pp. 1727-1738.
PMID 41889756 ↗

Abstract

Electrochemical valorization of poly-(ethylene terephthalate) (PET) into glycolic acid (GA) mediated by ethylene glycol monomers offers a promising approach for upcycling waste plastic. However, this process faces significant challenges, including low selectivity arising from multiple proton-coupled electron transfer steps and limited reaction rates attributed to the sluggish kinetics as well as the insufficient diffusion of reactants. Herein, we report the construction of a robust PdCu nanocatalyst via electrochemical dealloying of a bimetallic PdCu contained intermetallic PdCu structure precursor. This catalyst features a Pd-skin with an intermetallic PdCu core and a nanoporous structure featuring ∼ 2.4 nm in size. In-situ electrochemical ICP-MS and surface-enhanced IR spectroscopy reveal its structural stability and a predominant C2 pathway through the HOCHC*O intermediate toward GA electrosynthesis, respectively. A high mass activity of up to 9.95 A mg and a Faradaic efficiency for GA exceeding 92% across a broad potential window have been achieved. Furthermore, by integrating this nanoporous PdCu catalyst into the anode of a membrane-free flow cell electrolyzer and optimizing the flow field, continuous and stable GA electrosynthesis at 200 mA cm using PET-derived ethylene glycol has been demonstrated for over 110 h, with the GA Faradaic efficiency ranging from 86.6% to 95.4% and a yield of 0.51 g per gram of PET.

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