TY - JOUR
T1 - Facilitating C−C bond cleavage toward selective electrocatalytic oxidation of glycerol to formic acid
T2 - d−p orbital hybridization and adsorption thermodynamics
AU - Kang, Minji
AU - Lim, Won Gwang
AU - Zewdie, Getasew Mulualem
AU - Lee, Seonggyu
AU - Park, Jong Hyeok
AU - Kim, Sungjun
AU - Shin, Hyeyoung
AU - Lim, Eunho
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2026/3
Y1 - 2026/3
N2 - Formic acid (FA) is a high-value product in hydrogen energy systems; hence, its selective production via electrochemical glycerol oxidation reaction (GOR) in an alkaline medium has emerged as an energy-efficient approach. However, the process is hindered by sluggish C−C bond cleavage, limited charge transfer, and competitive adsorption between glycerol and OH* species. In this study, we design La-based perovskite electrocatalysts with dual B-site metal incorporation to address the key challenges of alkaline GOR. Among various transition metal combinations (Ni, Fe, and Co), LaNi0.5Co0.5O3 (LNCO) demonstrates the highest GOR performance due to a synergistic effect between Ni and Co, which has been shown to modulate the electronic structure and optimize adsorption thermodynamics. In particular, LNCO exhibits enhanced charge transfer behavior, driven by metal 3d−oxygen 2p orbital hybridization and by a delocalized electronic structure with negligible band gap. Furthermore, glycerol adsorption is thermodynamically more favorable than OH* species, providing balanced adsorption energy conducive to efficient GOR. Consequently, LNCO promotes C−C bond cleavage kinetics and enhances selective FA production. These findings highlight that LNCO is a promising electrocatalytic platform for value-added chemical synthesis via a sustainable electrochemical route.
AB - Formic acid (FA) is a high-value product in hydrogen energy systems; hence, its selective production via electrochemical glycerol oxidation reaction (GOR) in an alkaline medium has emerged as an energy-efficient approach. However, the process is hindered by sluggish C−C bond cleavage, limited charge transfer, and competitive adsorption between glycerol and OH* species. In this study, we design La-based perovskite electrocatalysts with dual B-site metal incorporation to address the key challenges of alkaline GOR. Among various transition metal combinations (Ni, Fe, and Co), LaNi0.5Co0.5O3 (LNCO) demonstrates the highest GOR performance due to a synergistic effect between Ni and Co, which has been shown to modulate the electronic structure and optimize adsorption thermodynamics. In particular, LNCO exhibits enhanced charge transfer behavior, driven by metal 3d−oxygen 2p orbital hybridization and by a delocalized electronic structure with negligible band gap. Furthermore, glycerol adsorption is thermodynamically more favorable than OH* species, providing balanced adsorption energy conducive to efficient GOR. Consequently, LNCO promotes C−C bond cleavage kinetics and enhances selective FA production. These findings highlight that LNCO is a promising electrocatalytic platform for value-added chemical synthesis via a sustainable electrochemical route.
KW - C−C bond cleavage
KW - Electrocatalyst
KW - Electrochemical glycerol oxidation
KW - Selective formic acid production
KW - Zero band gap
KW - d−p orbital hybridization
UR - https://www.scopus.com/pages/publications/105015512881
U2 - 10.1016/j.apcatb.2025.125947
DO - 10.1016/j.apcatb.2025.125947
M3 - Article
AN - SCOPUS:105015512881
SN - 0926-3373
VL - 382
JO - Applied Catalysis B: Environmental
JF - Applied Catalysis B: Environmental
M1 - 125947
ER -