Se Nanopowder Conversion into Lubricious 2D Selenide Layers by Tribochemical Reactions

Author:

Grützmacher Philipp G.1ORCID,Cutini Michele2ORCID,Marquis Edoardo2,Rodríguez Ripoll Manel3ORCID,Riedl Helmut4ORCID,Kutrowatz Philip4,Bug Stefan1,Hsu Chia‐Jui1ORCID,Bernardi Johannes5ORCID,Gachot Carsten1,Erdemir Ali6ORCID,Righi Maria Clelia2ORCID

Affiliation:

1. Institute for Engineering Design and Product Development Tribology Research Division TU Wien Vienna 1060 Austria

2. Department of Physics and Astronomy Alma Mater Studiorum − University of Bologna Bologna 40127 Italy

3. AC2T research GmbH Wiener Neustadt 2700 Austria

4. Institute of Materials Science and Technology TU Wien Vienna 1060 Austria

5. University Service Centre for Transmission Electron Microscopy (USTEM) TU Wien Vienna 1040 Austria

6. J. Mike Walker '66 Department of Mechanical Engineering Texas A&M University College Station TX 77843 USA

Abstract

AbstractTransition metal dichalcogenide (TMD) coatings have attracted enormous scientific and industrial interest due to their outstanding tribological behavior. The paradigmatic example is MoS2, even though selenides and tellurides have demonstrated superior tribological properties. Here, an innovative in operando conversion of Se nanopowders into lubricious 2D selenides, by sprinkling them onto sliding metallic surfaces coated with Mo and W thin films, is described. Advanced material characterization confirms the tribochemical formation of a thin tribofilm containing selenides, reducing the coefficient of friction down to below 0.1 in ambient air, levels typically reached using fully formulated oils. Ab initio molecular dynamics simulations under tribological conditions reveal the atomistic mechanisms that result in the shear‐induced synthesis of selenide monolayers from nanopowders. The use of Se nanopowder provides thermal stability and prevents outgassing in vacuum environments. Additionally, the high reactivity of the Se nanopowder with the transition metal coating in the conditions prevailing in the contact interface yields highly reproducible results, making it particularly suitable for the replenishment of sliding components with solid lubricants, avoiding the long‐lasting problem of TMD‐lubricity degradation caused by environmental molecules. The suggested straightforward approach demonstrates an unconventional and smart way to synthesize TMDs in operando and exploit their friction‐ and wear‐reducing impact.

Funder

European Research Council

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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