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[1].
Proton-Relaying Adsorbates Induce Non-Nernstian Behavior in Oxygen Reduction,ACS Catalysis,2025,
[2].
P-block elements adsorption induced shift of potential of zero free charge of Pt(111)/HClO4 interface,Electrochimica Acta,2025,
[3].
Frequently Encountered Factors Which Obstruct the Evaluation of the Intrinsic Kinetics of Electrocatalytic Reactions,Chinese Journal of Chemical Physics,2025,
[4].
From 2e− to 4e− pathway in the alkaline oxygen reduction reaction on Au(100): Kinetic circumvention of the volcano curve,The Journal of Chemical Physics,2025,
[5].
Protons Accumulation near Au Electrode/Acid Interface Probed by Electrochemical in situ Infrared Spectroscopy under Attenuated Total Reflection Configuration,The Journal of Physical Chemistry C,2025,
[6].
Regulating sulfonic acid group adsorption for enhanced oxygen reduction reaction activity at Pt(111)-Nafion,Journal of Power Sources,2025,
[7].
Unveiling the Structure of Interfacial Water and its Role in Acidic and Alkaline Hydrogen Evolution Reaction at Au Electrode by Electrochemical in-situ Infrared Spectroscopy and Theoretical Simulation,Journal of Catalysis,2025,
[8].
Double-Layer Capacitance Peaks: Origins, Ion Dependence, and Temperature Effects,JOURNAL OF CHEMICAL PHYSICS,2025,
[9].
Structured solvent on a split electron tail: A semiclassical theory of electrified metal-solution interfaces,PHYSICAL REVIEW APPLIED,2025,
[10].
Disentangling Multiple pH-Dependent Factors on the Hydrogen Evolution Reaction at Au(111),Precision Chemistry,2025,
[11].
Molecular Iridium Catalyzed Electrochemical Formic Acid Oxidation: Mechanistic Insights,ANGEWANDTE CHEMIE-INTERNATIONAL EDITION,2025,
[12].
Fighting poison with poison: Enhancing the performance of oxygen reduction reaction on Pt(111) via trace halide ion addition,Journal of Power Sources,2025,
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