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Updated: Jan 7, 2026

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Synergistic Enhancement Mechanism of Electric Double Layer Structure and Interfacial Tribochemical Reactions
Yusen Zhang1, Wei Long1, Tao Li1,2
1Faculty of Mechanical and Electrical Engineering, Kunming University of Science and Technology, Kunming 650500, P. R. China.
Abstract:
Precise regulation of interfacial electrochemistry through pH control represents an emerging strategy for enhancing water-based lubrication. However, the synergistic effects between pH-modulated electric double layer (EDL) structures and tribochemical reactions remain inadequately quantified. In this paper, we systematically investigate the tribological behavior of GCr15 steel-SiC friction pairs lubricated with water-based lubricants of Na2SiO3 and NaHCO3 at concentrations of 1, 5, and 10 wt %. Friction test and triboelectric test, coupled with scanning electron microscopy (SEM), energy-dispersive spectroscopy (EDS), and X-ray photoelectron spectroscopy (XPS) analyses, were employed to reveal how pH influences interfacial processes on multiple scales. The results showed that 5 wt % Na2SiO3 achieves the low coefficient of friction (COF) and reduces wear by 67.43%, owing to the formation of a dense and protective silicate tribofilm. In contrast, 10 wt % NaHCO3 achieved a low COF but provided limited wear protection due to the development of a porous and unstable carbonate layer. Furthermore, we identified a closed-loop feedback mechanism of the friction-polarization electric field-EDL-ion migration-tribochemical reaction, where pH alters the OH- concentration, thereby compressing or expanding the EDL and regulating anion adsorption kinetics as well as tribofilm stability. In order to verify the above mechanism, a quantitative multivariable model incorporating pH and short-circuit current was constructed to capture system-specific sensitivities. The model revealed that Na2SiO3 systems display higher pH responsiveness due to compression of the EDL and interfacial passivation, whereas NaHCO3 systems were dominated by tribofilm rupture-regeneration dynamics. This work provides a new framework for the rational design of high-performance water-based lubricants.
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