4.6 Article

First-principles design of hetero CoM (M=3d, 4d, 5d block metals) double-atom catalysts for oxygen evolution reaction under alkaline conditions

期刊

NANOSCALE ADVANCES
卷 4, 期 13, 页码 2913-2921

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d2na00107a

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资金

  1. National Research Foundation of Korea (NRF) - Korea government (MSIT) [NRF-2021M3I3A1084813, NRF-2020R1A2C1099711]
  2. Korea Institute of Science and Technology (KIST)
  3. Inha University

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This study evaluated the catalytic activity of CoM homo and double-atom catalysts supported on nitrogen-doped graphene for electrochemical water oxidation under alkaline conditions, with the hetero CoCu/N(4)G double-atom catalyst showing the highest OER activity. Theoretical calculations explained the enhanced OER activity by the crucial impact of Cu dopant and changes in the electron structure characteristics.
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.

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