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Electronic regulation of electrochemical reconstruction via a Ce3+/Ce4+ electron buffer for efficient alkaline water
Haoran Yin1, Linyu Chen1, Linlin Huang1
1Guangxi Key Laboratory of Low Carbon Energy Materials, School of Chemistry and Pharmaceutical Sciences, Guangxi Normal University, Guilin 541004, Guangxi, China.
Abstract:
The rational regulation of electrochemical reconstruction is a promising route to high-performance oxygen evolution reaction (OER) electrocatalysts, yet the underlying electronic mechanisms and their technological relevance remain elusive. Herein, a Ce-doped Ni-based metal organic framework (NiCe NDC) precatalyst is fabricated via a facile one-step solvothermal method. The reversible Ce3+/Ce4+ redox pair acts as a dynamic electron-buffering center, and the strong Ni 3d-O 2p-Ce 4f orbital coupling induces controllable reconstruction into stable β-NiOOH, while inhibiting the over-oxidation and structural deterioration of active phases. In situ Raman spectroscopy and X-ray photoelectron spectroscopy verify the optimized reconstruction kinetics and reversible Ce valence evolution, while density functional theory (DFT) calculations confirm that near-Fermi-level Ce 4f states serve as electron reservoirs to modulate the Ni d-band center, enrich electronic density at the Fermi level, and reduce the free-energy barrier of the rate-determining *O to *OOH step. Optimized NiCe NDC delivers superior alkaline OER performance with a low overpotential of 194 mV at 10 mA cm-2, a small Tafel slope of 61.8 mV dec-1, and long-term stability over 100 h at 100 mA cm-2. Coupled with a Pt/C cathode, the assembled overall water-splitting electrolyzer achieves current densities of 10-1000 mA cm-1 under low cell voltages of 1.42-1.90 V. A techno-economic assessment (TEA) of a 20 MW alkaline electrolyzer estimates a levelized cost of hydrogen (LCOH) of ∼USD 5.40 kg-1H₂. This work reveals the electronic mechanism of rare-earth-regulated reconstruction and provides a feasible strategy for designing advanced OER catalysts toward industrial green hydrogen production.
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