Structural Modification Effect of Se‐doped Porous Carbon for Hydrogen Evolution Coupled Selective Electrooxidation of Ethylene Glycol to Value‐added Glycolic Acid

Author:

Jang Daehee1,Park Minseon1,Maeng Junbeom1,Ha Jungseub1,Choi Sehun1,Kim Nayeon1,Seo Min Ho2,Kim Won Bae13ORCID

Affiliation:

1. Department of Chemical Engineering Pohang University of Science and Technology (POSTECH) 77 Cheongam‐ro, Nam‐gu Pohang Gyeongbuk 37673 Republic of Korea

2. Department of Nanotechnology Engineering Pukyong National University 45 Yongso‐ro, Nam‐gu Busan 48547 Republic of Korea

3. Graduate Institute of Ferrous & Eco Materials Technology Pohang University of Science and Technology (POSTECH) 77 Cheongam‐ro, Nam‐gu Pohang Gyeongbuk 37673 Republic of Korea

Abstract

AbstractThe ethylene glycol oxidation reaction (EGOR) has attracted attention because ethylene glycol (EG), which exhibits large‐scale production and a low market price, can be reformed into valuable glycolic acid (GCA) with the cogeneration of high‐purity hydrogen gas during the reaction. In this study, a noble catalyst material of Pt nanoparticles supported on Se‐doped porous carbon (Pt/SePC) is prepared and investigated for the selective electrochemical oxidation of EG to GCA. Pt/SePC achieved a maximum EG conversion of 94.6% and GCA selectivity of 84.4% and maintained this high performance with negligible degradation during durability tests. Furthermore, the EGOR required lower overpotential rather than the oxygen evolution reaction, thus the EGOR coupled with the hydrogen evolution reaction can reduce the cell overpotential to 0.60 V, which is much lower than that of water electrolysis (1.58 V). The effect of Se doping is investigated through experimental analyses and density functional theory (DFT) calculations, and they shows that Se modified the binding energy of Pt nanoparticles and the adsorption energy of reactants by lattice deformation and charge density modification. This study provides scientific insights and strategies for electrocatalyst design for the selective oxidation of polyols to value‐added chemicals via the cogeneration of hydrogen gas.

Funder

Ministry of Trade, Industry and Energy

Ministry of Science and ICT, South Korea

Publisher

Wiley

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