Polyhedron shaped palladium nanostructures embedded on MoO2/PANI-g-C3N4 as high performance and durable electrocatalyst for oxygen reduction reactionopen access
- Authors
- Ravichandran, Sabarinathan; Bhuvanendran, Narayanamoorthy; Kumar, R. Selva; Balla, Putrakumar; Lee, Sae Youn; Xu, Qian; Su, Huaneng
- Issue Date
- Jan-2023
- Publisher
- Elsevier Inc
- Keywords
- Pd-Mo bimetallic catalyst; PANI-g-C3N4; Oxygen reduction reaction; Density functional theory; Durability
- Citation
- Journal of Colloid and Interface Science, v.629, pp 357 - 369
- Pages
- 13
- Indexed
- SCIE
SCOPUS
- Journal Title
- Journal of Colloid and Interface Science
- Volume
- 629
- Start Page
- 357
- End Page
- 369
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/25830
- DOI
- 10.1016/j.jcis.2022.09.077
- ISSN
- 0021-9797
1095-7103
- Abstract
- A hybrid catalyst support anchoring a noble metal catalyst could be a promising material for building interfacial bonding between metallic nanostructures and polymer functionalized carbon supports to improve the kinetics of oxygen reduction reaction (ORR). This study successfully prepared a polyhedron nanostructured Pd and MoO2-embedded polyaniline-functionalized graphitized carbon nitride (PANI-g-C3N4) surface using a chemical reduction method. The Pd-Mo/PANI-g-C3N4 achieved an ORR activity of 0.27 mA mu g(-1) and 1.14 mA cm(-2) at 0.85 V, which were 4.5 times higher than those of commercial 20% Pt/C catalyst (0.06 mA mu g(-1) and 0.14 mA cm(-2)). In addition, the Pd-Mo/PANI-g-C3N4 retained similar to 77.5% of its initial mass activity after 10,000 cycles, with only 30 mV half-wave potential reduction. Further, the engineered potential active sites in the catalyst material verified the significant improvement in the ORR activity of the catalyst with increased life-time, and theoretical calculations revealed that the synergistic effect of the catalytic components enhanced the ORR kinetics of the active sites. (C) 2022 Elsevier Inc. All rights reserved.
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