Chinese Journal of Catalysis ›› 2026, Vol. 88: 295-306.DOI: 10.1016/S1872-2067(26)65083-8
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Qi Tanga,1, Bomiao Wanga,1, Chongtai Wangb,*(
), DaoXiong Wuc, Ziming Chenga, Huimin Hana, Leiyun Hana, Huaxia Chena,*(
), Yingjie Huaa,*(
)
Received:2025-12-09
Accepted:2026-01-26
Online:2026-09-18
Published:2026-09-05
About author:First author contact: 共同第一作者.Supported by:Qi Tang, Bomiao Wang, Chongtai Wang, DaoXiong Wu, Ziming Cheng, Huimin Han, Leiyun Han, Huaxia Chen, Yingjie Hua. The regulation of interface structure improves the performance of the MoxOy/Co3O4 electrocatalytic oxygen evolution reaction in acidic media[J]. Chinese Journal of Catalysis, 2026, 88: 295-306.
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URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(26)65083-8
Scheme 1. Schematic illustration of the controlled growth of diverse Co3O4 morphologies and their subsequent integration with MoxOy to construct the MoxOy/Co3O4 catalyst.
Fig. 3. Electrochemical properties of h-Co3O4/NF and d-Co3O4/NF in 0.5 mol L?1 H2SO4: (a) LSV Curve (inset: stability tests), (b) EIS, (c) Tafel Slope, (d) Cdl. CV Curves of d-Co3O4/NF (e) and h-Co3O4/NF (f).
Fig. 4. SEM images of h-Co3O4/d-Co3O4/NF (a,b) and a-MoxOy/h-Co3O4/d-Co3O4/NF (c,d). Cross-sections of h-Co3O4/d-Co3O4/ NF (e) and a-MoxOy/h-Co3O4/d-Co3O4/NF (f). TEM images of h-Co3O4/ d-Co3O4/NF (g) and a-MoxOy/h-Co3O4/d-Co3O4/NF (h).
Fig. 5. Raman spectra (a), XRD patterns (b), and survey XPS spectra (c) of h-Co3O4/d-Co3O4/NF, a-MoxOy/d-Co3O4/NF and a-MoxOy/h-Co3O4/d-Co3O4/NF. XPS spectra of Co 2p (d), O 1s (e), and Mo 3d (f).
Fig. 6. Electrochemical performance of h-Co3O4/d-Co3O4/NF, a-MoxOy/h-Co3O4/d-Co3O4/NF and a-MoxOy/d-Co3O4/NF in 0.5 mol L-1 H2SO4. (a) LSV curve. (b) Chronopotentiometry curves at a current density of 10 mA cm-2. (c) Dissolution amounts of Co and Ni from the catalyst during the acidic OER stability test (0.5 mol L-1 H2SO4, 10 mA cm-2) as a function of time, determined by ICP-MS. (d) Tafel slope. (e) EIS. (f) Cdl. CV Curves of h-Co3O4/d-Co3O4/NF (g) and a-MoxOy/h-Co3O4/d-Co3O4/NF (h). In-situ Raman of h-Co3O4/d-Co3O4/NF (i,j) and a-MoxOy/h-Co3O4/d-Co3O4/NF (k-l), recorded at different applied potentials (vs. RHE).
Fig. 7. Characterization of a-MoxOy/h-Co3O4/d-Co3O4/NF after stability test. (a,b) SEM images. (c) XRD patterns. XPS spectra of Mo 3d (d), O 1s (e), and Co 2p (f).
Fig. 8. Optimized atomic structures for H2O adsorption on MoO3, Co3O4, and MoO3@Co3O4 surfaces (a), and the corresponding adsorption Gibbs free energies (b). (c) Proposed OER reaction pathway mediated by MoO3@Co3O4. (d) Calculated Gibbs free energy profiles for the OER on MoO3, Co3O4, and MoO3@Co3O4. (e) Comparison of the Gibbs free energies for OOH* intermediate adsorption on MoO3, Co3O4, and MoO3@Co3O4.
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