Chinese Journal of Catalysis ›› 2026, Vol. 88: 335-346.DOI: 10.1016/S1872-2067(26)65138-8
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Yingzhen Zhanga,b, Wei Zhangb, Zhangzheng Huangb, Weilong Caia,b, Yun Hau Ngd,e, Jianying Huangb,*(
), Yuekun Laia,b,c,*(
)
Received:2025-12-12
Accepted:2026-02-21
Online:2026-09-18
Published:2026-09-05
Supported by:Yingzhen Zhang, Wei Zhang, Zhangzheng Huang, Weilong Cai, Yun Hau Ng, Jianying Huang, Yuekun Lai. Mn-triggered dynamic phase transition in NiSe2 catalyst via doping engineering for boosted urea electrolysis[J]. Chinese Journal of Catalysis, 2026, 88: 335-346.
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URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(26)65138-8
Fig. 1. (a) Schematic illustration of Mn/NiSe2. SEM images of NF (b), Mn (c), NiSe2 (d), Mn/NiSe2 (e). HR-TEM images of NiSe2 (f) and Mn/NiSe2 (g). (h) EDS spectrum of Mn/NiSe2.
Fig. 2. High-resolution XPS spectra of Ni 2p (a), Se 3d (b), and Mn 2p (c) of NiSe2 and Mn/NiSe2, respectively. (d) Normalized XANES spectra near Ni K-edge of Ni foil, NiO, NiSe2 and Mn/NiSe2. WT-EXAFS spectra of NiSe2 (e) and Mn/NiSe2 (f) at the Ni K-edge. (g) FT-EXAFS spectra. Structural models of NiSe2 (h) and Mn/NiSe2 (i).
Fig. 3. (a) UOR performance of Mn/NiSe2 prepared at different etching times. E100, Eonset (b), and Ea (c) of NF, Mn, NiSe2, and Mn/NiSe2 for UOR. (d) Pulsed i-t curves recorded at alternating potentials of 1.35 V vs. RHE (oxidation) and 0.90 V vs. RHE (reduction) in 1.0 mol L-1 KOH for NiSe2 and Mn/NiSe2. (e) EIS spectra. (f) Differential pulse voltammetry curves of NiSe2 and Mn/NiSe2 towards UOR. (g) Comprehensive performance comparison of different catalysts. LSV curves (h) and Ea (i) of Mn/NiSe2 for UOR and OER.
Fig. 4. In-situ Raman spectra. NiSe2 for the OER (a) and UOR (b). Mn/NiSe2 for OER (c) and UOR in 1.0 mol L-1 KOH with 0.33 (d), 0.165 (e), and 0.0825 mol L-1 (f) urea. UOR on γ-Mn/NiOOH, in 1.0 mol L-1 KOH with 0.0825 (g) and 0.165 mol L-1 (h) urea.
Fig. 5. (a) Adsorption energy of CO(NH2)2 and H2O on NiOOH and Mn/NiOOH. Charge density difference of CO(NH2)2 adsorbed on NiOOH (b) and Mn/NiOOH (c). (d) The projected COHP of Mn/NiOOH and NiOOH for N-H interaction, respectively. (e) The calculated d-band center of Mn/NiOOH and NiOOH. (f) UOR pathways on NiOOH and Mn/NiOOH.
Fig. 6. (a) Schematic illustration of the urea-assisted water electrolysis for H2 production. Polarization curves (b) and time-dependent H2 production (c) of Mn/NiSe2||Mn/NiSe2 and NiSe2||NiSe2 in 1.0 mol L-1 KOH with 0.33 mol L-1 urea. Polarization curves (d) and H2 generation rate (e) of Mn/NiSe2||Mn/NiSe2 in 1.0 mol L-1 KOH with and without urea. (f) Comparison of cell voltage and H2 production rate for Mn/NiSe2 with other reported electrocatalysts.
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