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Updated: Jan 11, 2026

Assessment of Boron Doped Diamond Electrode Quality and Application to In Situ Modification of Local pH by Water Electrolysis
Published on: January 6, 2016
Atomic doping resets the local electronic structure of a 2D V2C MXene-based heterointerface for efficient
Shaobin Li1, Yufeng Jiang1, Jingwei Liang1
1College of Materials Science and Engineering, Key Laboratory of Polymeric Composite Materials of Heilongjiang Province, Qiqihar University, Qiqihar 161006, PR China.
Abstract:
The development of the efficient bifunctional hydrolysis electrocatalyst is of great significance. In this work, N, Ce co-doped CoO nanoparticles (NPs) in-situ growing few-layer V2C-MXene interfacial structure (N, Ce-CoO NPs/MXene) has been developed as self-supporting electrodes for hydrogen production by interfacial engineering strategy. The integration of nanoparticles into the composite effectively mitigates the tendency of few-layer MXene sheets to undergo self-stacking, while simultaneously introducing a significant number of heterogeneous interfaces. The simultaneous doping of two distinct atoms modulates the electronic configuration of the active sites at heterogeneous interfaces, thereby enhancing the electron transfer processes occurring between the interfaces. The N, Ce-CoO NPs/MXene electrocatalysts exhibit excellent performance in both urea oxidation reaction (UOR) and hydrogen evolution reaction (HER), reaching 1.33 V and 86 mV at 10 mA cm-2. The N, Ce-CoO NPs/MXene as a bifunctional catalyst for urea-assisted electrolysis can reach 10 mA cm-2 at only 1.38 V with almost no performance degradation for 100 h. In-situ Raman spectroscopy reveals the main active sites of Co as a catalyst. Density functional theory (DFT) demonstrated that the N, Ce-CoO NPs/MXene interfacial catalysts facilitate electron transfer, thereby promoting the dissociation of urea molecules through the reorganization of electrons at the interface.
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The Nernst Equation
The interconnection between standard cell potentials and various thermodynamic parameters such as the standard free energy change ΔG° and equilibrium constant K has been previously explored. For example, a redox reaction involving zinc(II) and tin(II) ions at 1 M concentration with Eºcell = +0.291 V and ΔG° = −56.2 kJ is spontaneous.