First-principles design of hetero CoM (M=3d, 4d, 5d block metals) double-atom catalysts for oxygen evolution reaction under alkaline conditions
- Authors
- Lee, Eoyoon; Choi, Sun Hee; Ham, Hyung Chul
- Issue Date
- 2022-06
- Publisher
- ROYAL SOC CHEMISTRY
- Citation
- NANOSCALE ADVANCES, v.4, no.13, pp.2913 - 2921
- Abstract
- As an extension of single-atom catalysts, the development of double-atom catalysts with high electrocatalytic activity for the oxygen evolution reaction (OER) is vital to facilitate hydrogen production and industrial applications. The CoM (M 1/4 3d, 4d, 5d block metals) homo and double-atom catalysts supported on nitrogen-doped graphene (CoM/N(4)G) were prepared for electrochemical water oxidation under alkaline conditions, and the electrocatalytic activity was studied through density functional theory (DFT) calculations. The hetero CoCu/N(4)G double-atom catalyst indicated the highest OER activity with an onset potential of 0.83 V, while the homo Co-2/N(4)G catalyst showed a higher onset potential of 1.69 V. The decoupled strain, dopant, and configurational effects based on the notable differences between the homo Co-2/N(4)G and CoCu/N(4)G explained the enhanced OER activity, implying that the Cu dopant has a crucial impact on boosting the reactivity by reducing the affinity of reaction intermediates. The enhancement could also be understood from the perspective of the electron structure characteristic through d-orbital resolved density of states (ORDOS) (d(z2), dx(z), dy(z), dx(y), and dx(2) y(2)) analysis. From the ORDOS analysis, we found an apparent alteration of the key orbitals between Co-2/N(4)G ( dz 2, d(xz), and d(yz)) and CoCu/N(4)G (d(z2), dxz, d(yz), and d(xy)) with a substantial change in the overlap ratio (Xd). This theoretical study offers beneficial insights into developing a strategy for efficient OER catalysts utilizing a double-atom structure.
- ISSN
- 2516-0230
- URI
- https://pubs.kist.re.kr/handle/201004/76692
- DOI
- 10.1039/d2na00107a
- Appears in Collections:
- KIST Article > 2022
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