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August 17, 2021Nature Communications764 citationsOpen Access

Electrocatalytic upcycling of polyethylene terephthalate to commodity chemicals and H2 fuel

HZHua ZhouYRYue RenZLZhenhua Li

Key Points

  • The aim is to develop a process for converting polyethylene terephthalate into valuable chemicals and hydrogen fuel using electrocatalysis.
  • Developed a nickel-modified cobalt phosphide electrocatalyst to facilitate the process.
  • Conducted preliminary techno-economic analysis of the upcycling process.
  • Utilized membrane-electrode assembly reactor at high current density.
  • Achieved current density of 500 mA cm-2 at 1.8 V with >80% Faradaic efficiency.
  • Successfully produced potassium diformate and terephthalic acid with >80% selectivity during electrooxidation.
  • Revealed in-situ evolution of the catalyst into a low-crystalline metal oxy(hydroxide) state, enhancing performance.

Abstract

Plastic wastes represent a largely untapped resource for manufacturing chemicals and fuels, particularly considering their environmental and biological threats. Here we report electrocatalytic upcycling of polyethylene terephthalate (PET) plastic to valuable commodity chemicals (potassium diformate and terephthalic acid) and H2 fuel. Preliminary techno-economic analysis suggests the profitability of this process when the ethylene glycol (EG) component of PET is selectively electrooxidized to formate (>80% selectivity) at high current density (>100 mA cm-2). A nickel-modified cobalt phosphide (CoNi0.25P) electrocatalyst is developed to achieve a current density of 500 mA cm-2 at 1.8 V in a membrane-electrode assembly reactor with >80% of Faradaic efficiency and selectivity to formate. Detailed characterizations reveal the in-situ evolution of CoNi0.25P catalyst into a low-crystalline metal oxy(hydroxide) as an active state during EG oxidation, which might be responsible for its advantageous performances. This work demonstrates a sustainable way to implement waste PET upcycling to value-added products.

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Cite This Study

Zhou et al. (2021) studied this question.

synapsesocial.com/papers/69d764c9f182769aa8b8afa5https://doi.org/10.1038/s41467-021-25048-x
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Advances in Electrocatalytic Upcycling of Polyethylene Terephthalate to Value‐Added Chemicals2026
  2. 2Electrocatalytic Upcycling of PET-Derived Products: Catalyst Design, C1 - C2 Products, and Coupled Electrochemical Reactions2026 · 6 citations
  3. 3Corrosion Engineering of Part‐Per‐Million Single Atom Pt<sub>1</sub>/Ni(OH)<sub>2</sub> Electrocatalyst for PET Upcycling at Ampere‐Level Current Density2024 · 113 citations
  4. 4Advanced catalyst design and mechanistic insights in electrocatalytic upcycling of PET-derived ethylene glycol and coupled electrolysis systems2026 · 3 citations
  5. 5Advances and Insights in Electrocatalytic Upcycling of Polyethylene Terephthalate Plastic Wastes2025 · 18 citations