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Updated: Jun 19, 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
From Single Atom to Five-Atom Cluster Catalysts on Boron-Doped Diamond: Interface Engineering and Dynamic Active
Wei Cheng1, Yutong Wang1, Nan Gao1
1State Key Laboratory of High Pressure and Superhard Materials, College of Physics, Jilin University, Changchun 130012, China.
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The exceptional electrochemical stability of boron-doped diamond (BDD) makes it a promising oxygen evolution reaction (OER) anode in acidic media for proton exchange membrane water electrolyzers; however, its inertness leads to high overpotentials (η). To overcome this activity-stability conflict, we employ atomic-scale interface engineering via single-atom catalysts (SACs) and single-cluster catalysts (SCCs) anchored on BDD. Employing structure prediction and density functional theory (DFT) framework, we screen 28 SACs and 16 SCCs (including α and β isomers). Through stability assessments (formation energies, dissolution potentials, and diffusion barriers), M@BDD and M5@BDD-α/β (M = Fe, Co, Ni, Cu, and Pt) are identified as promising catalysts following the adsorbate evolution mechanism. Conventional descriptor analysis (ηOER vs ΔG*O-ΔG*OH) reveals a volcano-type activity trend, and ηOER exhibits a strong linear correlation with ΔG*OOH. Crucially, a dynamic reaction pathway is unveiled where proton-coupled electron transfer and *O adsorption on Ni5@BDD-α/β trigger a dramatic reduction in the isomerization barrier, driving a thermodynamically favorable symmetry breaking and establishing a new multicenter bonding-mode. This active site evolution thereby circumvents the rate-determining step identified in static models, achieving a lower η of 0.56 V. This work establishes a design principle for BDD-based catalysts and provides fundamental insight into dynamic active sites.
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