Ligand-Driven Electron-Deficient Cobalt Pentlandite Nanocrystals for Efficient Hydrogen Peroxide Electrosynthesisopen access
- Authors
- Kim, Jeong-Hyun; Lee, Jeong-Gyu; Kim, Chang Seong; Choi, Min-Jae
- Issue Date
- Mar-2025
- Publisher
- WILEY
- Keywords
- cobalt pentlandite; electrocatalysis; hydrogen peroxide synthesis; oxidation state; oxygen reduction reaction
- Citation
- Energy & Environmental Materials, v.8, no.2, pp 1 - 7
- Pages
- 7
- Indexed
- SCIE
SCOPUS
- Journal Title
- Energy & Environmental Materials
- Volume
- 8
- Number
- 2
- Start Page
- 1
- End Page
- 7
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/56447
- DOI
- 10.1002/eem2.12848
- ISSN
- 2575-0348
2575-0356
- Abstract
- Cobalt pentlandite (Co9S8) is a promising non-precious catalyst due to its superior oxygen reduction reaction activity and excellent stability. However, its oxygen reduction reaction catalytic activity has traditionally been limited to the four-electron pathway because of strong *OOH intermediate adsorption. In this study, we synthesized electron-deficient Co9S8 nanocrystals with an increased number of Co3+ states compared to conventional Co9S8. This was achieved by incorporating a high density of surface ligands in small-sized Co9S8 nanocrystals, which enabled the transition of the electrochemical reduction pathway from four-electron oxygen reduction reaction to two-electron oxygen reduction reaction by decreasing *OOH adsorption strength. As a result, the Co3+-enriched Co9S8 nanocrystals exhibited a high onset potential of 0.64 V (vs RHE) for two-electron oxygen reduction reaction, achieving H2O2 selectivity of 70-80% over the potential range from 0.05 to 0.6 V. Additionally, these nanocrystals demonstrated a stable H2O2 electrosynthesis at a rate of 459.12 mmol g-1 h-1 with a H2O2 Faradaic efficiency over 90% under alkaline conditions. This study provides insights into nanoscale catalyst design for modulating electrochemical reactions.
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Collections - College of Engineering > Department of Chemical and Biochemical Engineering > 1. Journal Articles

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