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Chinese Journal of Materials Research  2026, Vol. 40 Issue (7): 507-518    DOI: 10.11901/1005.3093.2026.110
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Effect of Lattice-interface Synergy of NiFe-layered Double Hydroxide /Co, La-doped CeO2 on Efficient Oxygen Evolution Reaction
WANG Jun1, LIU Wen1(), JI Weihua2(), MIAO Yang2,3(), WANG Yijie4(), ZONG Zhenhao1, MA Haoming1, ZHOU Lingling5
1.College of Chemical Engineering and Technology, Taiyuan University of Science and Technology, Taiyuan 030024, China
2.College of Materials Science and Engineering, Taiyuan University of Technology, Taiyuan 030024, China
3.Shanxi Innovation Technology Center for Coal-Based Solid Waste Resource Utilization, Taiyuan 030021, China
4.Beijing Advanced Innovation Center for Materials Genome Engineering, State Key Laboratory for Advanced Metals and Materials, University of Science and Technology Beijing, Beijing 100083, China
5.State Key Laboratory of Nonlinear Mechanics, Institute of Mechanics, Chinese Academy of Sciences, Beijing 100190, China
Cite this article: 

WANG Jun, LIU Wen, JI Weihua, MIAO Yang, WANG Yijie, ZONG Zhenhao, MA Haoming, ZHOU Lingling. Effect of Lattice-interface Synergy of NiFe-layered Double Hydroxide /Co, La-doped CeO2 on Efficient Oxygen Evolution Reaction. Chinese Journal of Materials Research, 2026, 40(7): 507-518.

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Abstract  

A novel heterojunction electrocatalyst of NiFe-layered double hydroxide/Co, La doped CeO2 was prepared by electrodepositing ultrathin NiFe-LDH nanosheets onto a Co, La co-doped CeO2 (Co, La-CeO2) support on copper foam (CF) according to the "lattice-interface synergistic regulation" strategy of our group. The support of Co, La co-doped CeO2 on CF was first synthesized via a one-pot hydrothermal method, while the controllable lattice strain and abundant oxygen vacancies (Oᵥ) were introduced, which may significantly enhance the intrinsic electronic conductivity and structural stability of the support. Furthermore, the strong interfacial coupling between NiFe-LDH and Co, La co-doped CeO2 may facilitate the charge transfer and optimize the adsorption of oxygen-containing intermediates. As a result, the NiFe-LDH/Co, La co-doped CeO2/CF composite exhibits superior performance of oxygen evolution reaction in 1.0 mol/L KOH, requiring an overpotential of only 230 mV to reach 50 mA·cm-2 with a Tafel slope of 74.65 mV·dec-1. It also retains 97.14% of its initial current density after 50 h of continuous operation. This study highlights the importance of lattice doping and interfacial synergy, providing a generalizable design framework for high-efficiency non-noble metal electrocatalysts for oxygen evolution reaction.

Key words:  composite      heterojunction      lattice strain      oxygen vacancies      oxygen evolution reaction      cerium-based catalysts     
Received:  26 January 2026     
ZTFLH:  O646.54  
Fund: National Natural Science Foundation of China(52472075);Natural Science Foundation for Young Scientists of Shanxi Province(202403021212037)
Corresponding Authors:  LIU Wen, Tel: 13700509372, E-mail: 13700509372@163.com;
JI Weihua, Tel: 18800185926, E-mail: jiweihua@tyut.edu.cn;
MIAO Yang, Tel: 18636918826, E-mail: miaoyang198781@163.com;
WANG Yijie, Tel: 18811398701, E-mail: wangyijie_2016@126.com

URL: 

https://www.cjmr.org/EN/10.11901/1005.3093.2026.110     OR     https://www.cjmr.org/EN/Y2026/V40/I7/507

Fig.1  Schematic illustration of the preparation process for the NiFe-LDH/Co, La-CeO2/CF composite
Fig.2  SEM images of the synthesized CeO2/CF (a) and Co-CeO2/CF (b)
Fig.3  SEM images of as-synthesized Co, La-CeO2/CF (a-c), NiFe-LDH/ Co, La-CeO2/CF (d-f), EDS elemental mapping of NiFe-LDH/Co, La-CeO2/CF (g), XRD patterns of NiFe-LDH/Co, La-CeO2 (h)
Fig.4  TEM (a, b, d, e) and HRTEM (c, f) images of Co, La-CeO2 (a-c) and NiFe-LDH/Co, La-CeO2 (d-f)
Fig.5  Raman spectra of NiFe-LDH/Co, La-CeO2, Co,La-CeO2 and CeO2
Fig.6  XPS survey spectrum of NiFe-LDH-Co, La-CeO2/CF (a) and XPS spectrum of C 1s in NiFe-LDH/Co, La-CeO2/CF (b)
Fig.7  XPS of NiFe-LDH/Co, La-CeO2/CF, Co, La-CeO2/CF and CeO2/CF (a) Ce 3d, (b) O 1s, (c) Co 2p, (d) La 3d, (e) Ni 2p, (f) Fe 2p
Fig.8  OER LSV curves of samples (a), overpotential histograms of various samples at 10 mA·cm-2, 50 mA·cm-2, and 100 mA·cm-2 current densities (b), associated tafel plots (c), Cdl plots for the relevant (d), EIS Nyquist plots (e) and stability test of NiFe-LDH/Co, La-CeO2/CF at 100 mA·cm-2 (f)
Catalystj / mA·cm-2η / mVElectrolystsReference
NiFe-LDH/Co, La-CeO2/CF502301 mol/L KOHThis work
10172
NiFe-LDH/Co/C@NF502441 mol/L KOH[52]
10
NiFeLDH/NiCoP@NC/NF501 mol/L KOH[53]
10210
Ce-CoP@CC501 mol/L KOH[54]
10240
NiFeCe-LDH@CP502551 mol/L KOH[55]
10232
Co3O4@NiFe-LDH/NF502701 mol/L KOH[56]
10
CoP/CeO2-20502981 mol/L KOH[27]
10257
2%Gd-CeO2501 mol/L KOH[37]
10369
Ce(OH)3@NiFe LDH501 mol/L KOH[57]
10220
Ce-Ni3S2/MnS/NF502451 mol/L KOH[58]
10194
S-FeCoNiO x501 mol/L KOH[59]
10221
Table 1  Comparison of OER performance of NiFe-LDH/Co, La-CeO2/CF with reported electrocatalysts
SampleRs / Ω·cm2Rct / Ω·cm2
NiFe-LDH/Co, La-CeO2/CF1.20.47
Co, La-CeO2/CF1.183.27
NiFe-LDH/CF1.281.94
CeO2/CF1.377.57
Table 2  Resistance values of the equivalent circuits for various catalysts during OER tests
Fig.9  Gibbs free energy diagram for the four steps of OER (a) on NiFe-LDH and NiFe-LDH/Co, La-CeO2, total density of states (b) and density of states (DOS) (c, d) for NiFe-LDH and NiFe-LDH/Co, La-CeO2
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