Concurrent Production of Glycolic Acid via Anode Valorization of Plastic Paired With Cathode Upcycling of Biomass Derivative

S Sailei Kang (Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China) W Wenfang Yuan (Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China) X Xuyun Guo Y Yu Zhang (Xiangya Hospital, Central South University Changsha China) J Jian Shang (Low-Dimensional Energy Materials Research Center) P Peinuo Yang (Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China) Y Yingxin Ma (Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China) V Valeria Nicolosi (CRANN & AMBER Research Centres and School of Chemistry) L Lejuan Cai (Songshan Lake Materials Laboratory) B Bocheng Qiu (Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China)

Abstract

Abstract Electrochemical upcycling of polyethylene‐terephthalate‐derived (PET‐derived) ethylene glycol (EG) into valuable chemicals, such as glycolic acid (GA), provides a sustainable route for reclaiming the carbon resource in plastic wastes. However, valorization of EG to GA is realized solely via anodic oxidation, which is typically accompanied by the generation of low‐value hydrogen at the cathode. Here, we develop a GA production system that combines anodic and cathodic GA production via oxidation of PET‐derived EG paired with reduction of biomass‐derived oxalic acid, which is made possible by the discovery of a robust PdBi alloy anode and earth‐abundant TiO 2 cathode. Building on the theoretical understanding and experimental demonstration of anti‐CO poisoning on the PdBi anode and temperature‐dependent GA electrosynthesis on the TiO 2 cathode, our integrated electrochemical system achieves a total Faradaic efficiency of 182% for GA production. This proof‐of‐concept electrochemical coupling strategy paves the way for high‐efficiency utilization of surplus plastic‐/biomass‐derived feedstocks via renewable‐electricity‐driven electrocatalysis.

Article Details

Volume / Issue Vol. 64, Issue 30
Published July 21, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

S

Sailei Kang

Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China

W

Wenfang Yuan

Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China

X

Xuyun Guo

Y

Yu Zhang

Xiangya Hospital, Central South University Changsha China

J

Jian Shang

Low-Dimensional Energy Materials Research Center

P

Peinuo Yang

Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China

Y

Yingxin Ma

Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China

V

Valeria Nicolosi

CRANN & AMBER Research Centres and School of Chemistry

L

Lejuan Cai

Songshan Lake Materials Laboratory

B

Bocheng Qiu

Department of Chemistry College of Sciences Nanjing Agricultural University Nanjing 210095 China