Abstract
Powertrains in electric vehicles are exposed to stray currents that accelerate wear and cause failure of mechanical components. These durability issues are further aggravated when using low-viscosity lubricants, which are desired for energy efficiency but create harsher contact conditions at sliding interfaces. This study investigates a phosphonium phosphate ionic liquid as a performance-enhancing additive in a low-viscosity base oil for lubricating electrified sliding interfaces. Ionic liquids can adsorb and react on contact interfaces via stress-assisted chemical reactions, generating nanometric tribofilms that provide protection against wear. However, the effect of electric fields on the mechanochemistry of ionic liquids is poorly understood, hindering their adoption in lubricants for electrified powertrains. This article reports an in situ optical interferometry study of ionic liquid derived tribofilm growth kinetics at stressed sliding/rolling interfaces under direct currents. The application of electric currents accelerated tribofilm formation up to a critical current density (∼1.4 A/mm2), beyond which pitting-induced wear dominated. The tribofilms were composed of iron phosphates, iron oxides, and carbon species, with iron oxides becoming predominant under applied currents. These tribofilms prevented the scuffing failure of steel surfaces under electrified conditions. Based on the results, a kinetic model is proposed that integrates electric current effect into the classical stress-assisted thermal activation framework to allow prediction of tribofilm growth at electrified sliding contacts. This framework provides crucial guidance for designing next-generation lubricants for electrified transportation and power generation systems.
| Original language | English |
|---|---|
| Pages (from-to) | 16422-16431 |
| Number of pages | 10 |
| Journal | Langmuir |
| Volume | 42 |
| Issue number | 23 |
| DOIs | |
| State | Published - Jun 16 2026 |
Funding
This research was sponsored by the National Aeronautics and Space Administration (Grant Number 80NSSC24M0155). PN thanks Timothy Krantz (NASA John H. Glenn Research Center) for fruitful technical discussions and for his support as the technical monitor for this project. FA acknowledges financial support of the John Brammer Graduate Research Fellowship received from the School of Mechanical and Aerospace Engineering, Oklahoma State University. The authors are grateful to Mike Blumenfeld (Exxon Mobil) for providing the PAO base oil for this study. Oak Ridge National Lab’s effort was supported by the Powertrain Materials Core Program, Vehicle Technologies Office, Office of Energy Efficiency and Renewable Energy, Department of Energy. Note: This manuscript has been coauthored by UT-Battelle, LLC, under contract DE-AC05-00OR22725 with the US Department of Energy (DOE). The US government retains and the publisher, by accepting the article for publication, acknowledges that the US government retains a nonexclusive, paid-up, irrevocable, worldwide license to publish or reproduce the published form of this manuscript, or allow others to do so, for US government purposes. DOE will provide public access to these results of federally sponsored research in accordance with the DOE Public Access Plan (https://www.energy.gov/doe-public-access-plan).
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