Please use this identifier to cite or link to this item: https://doi.org/10.1016/j.cej.2022.140643
Title: High performance and durable graphene-grafted cathode for electro-Fenton degradation of tetramethyldecynediol
Authors: Wang, Zuxin 
Olvera-Vargas, Hugo 
Martins, Marcos Vinicius Surmani 
Garcia-Rodriguez, Orlando 
Garaj, Slaven 
Lefebvre, Olivier 
Keywords: Science & Technology
Technology
Engineering, Environmental
Engineering, Chemical
Engineering
Carbon fiber
Electro-Fenton
Hydrogen peroxide electro-generation
Reduced graphene oxide
2
4
7
9-tetramethyl-5-decyne-4
7-diol
ADVANCED OXIDATION PROCESSES
WASTE-WATER
HYDROGEN-PEROXIDE
OXYGEN REDUCTION
CARBON-FIBER
THERMAL-STABILITY
FUNCTIONAL-GROUPS
MINERALIZATION
OXIDE
POLLUTANTS
Issue Date: 1-Jan-2023
Publisher: ELSEVIER SCIENCE SA
Citation: Wang, Zuxin, Olvera-Vargas, Hugo, Martins, Marcos Vinicius Surmani, Garcia-Rodriguez, Orlando, Garaj, Slaven, Lefebvre, Olivier (2023-01-01). High performance and durable graphene-grafted cathode for electro-Fenton degradation of tetramethyldecynediol. CHEMICAL ENGINEERING JOURNAL 455. ScholarBank@NUS Repository. https://doi.org/10.1016/j.cej.2022.140643
Abstract: A novel reduced graphene oxide grafted carbon fiber (rGO-CF) cathode for electro-Fenton was prepared using a simple thermal treatment method and applied to the degradation of tetramethyldecynediol (TMDD), a massively used non-ionic surfactant. Electrochemical characterization demonstrated that the new cathode possessed high electroactive surface area (1387.1 cm2 g−1), low electron-transfer resistance (0.198 Ω) and high activity for oxygen reduction. With these excellent properties, rGO-CF achieved 122.1 mg L−1 of H2O2 accumulation, 45 % higher than with the unmodified cathode (84.2 mg L−1). Compared to the unmodified cathode, rGO-CF doubled the TMDD degradation rate and increased the 2-hour mineralization yield from 49.4 % to 84.0 %. Most importantly, rGO-CF exhibited excellent stability verified over 1000 cycles of cyclic voltammetry and 5 runs of electro-Fenton experiments. A degradation pathway for the oxidation of TMDD is proposed. With ease of fabrication, stability and affordable cost, the new electrode shows tremendous potential for practical applications.
Source Title: CHEMICAL ENGINEERING JOURNAL
URI: https://scholarbank.nus.edu.sg/handle/10635/238737
ISSN: 1385-8947
1873-3212
DOI: 10.1016/j.cej.2022.140643
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