Chinese Journal of Catalysis ›› 2025, Vol. 77: 210-219.DOI: 10.1016/S1872-2067(25)64771-1
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Yuhui Chen, Congbao Guo, Yi Wang, Kun Wang*(), Shuqin Song*(
)
Received:
2025-05-03
Accepted:
2025-05-20
Online:
2025-10-18
Published:
2025-10-05
Contact:
*E-mail: wangk269@mail.sysu.edu.cn (K. Wang), stsssq@mail.sysu.edu.cn (S. Song).
Supported by:
Yuhui Chen, Congbao Guo, Yi Wang, Kun Wang, Shuqin Song. Constructing high-entropy spinel oxide thin films via magnetron sputtering for efficiently electrocatalyzing alkaline oxygen evolution reaction[J]. Chinese Journal of Catalysis, 2025, 77: 210-219.
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URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(25)64771-1
Fig. 1. (a) Schematic illustrations of the synthesis of (FeCoNiCrMo)3O4. (b) XRD patterns of (FeCoNiCrMo)3O4, (FeCoNiCr)3O4 and blank. TEM (c), HRTEM (d) and HAADF-STEM images and corresponding elemental mappings (e) of the (FeCoNiCrMo)3O4.
Fig. 3. (a) LSV curves in 1.0 mol L-1 KOH solution at room temperature. (b) OER overpotentials of (FeCoNiCrMo)3O4, (FeCoNiCr)3O4, IrO2, and NF at 10 mA cm-2. (c) Comparison of OER overpotentials and Tafel slope of this work and other already reported works. EIS Nyquist plots (d), and stability test (e) of (FeCoNiCrMo)3O4 and IrO2 at 100?mA?cm-2 for 200?h.
Fig. 4. (a) The pH dependence of the (FeCoNiCr)3O4 and (FeCoNiCrMo)3O4 on the OER potential at the SHE scales. (b) LSV curves of the (FeCoNiCr)3O4 and comparative samples in the presence or absence of TMAOH in KOH electrolytes. (c) Arrhenius plots for calculating activation energies of OER kinetics at 1.55 V vs. RHE. (d) LSV curves of the (FeCoNiCr)3O4 and (FeCoNiCrMo)3O4 in 1.0 mol L-1 KOH with and without methanol (0.602 mol L-1).
Fig. 5. TDOS (a) and PDOS (b) of Ni site in (FeCoNiCrMo)3O4 and (FeCoNiCr)3O4. (c) Reaction free energy step diagram of the (FeCoNiCrMo)3O4 and (FeCoNiCr)3O4 under the AEM pathway. The insets present the schematic diagram of each step evolving the *OH, *O, and *OOH intermediates on (FeCoNiCrMo)3O4 models
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