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Macroscale, humidity-insensitive, and stable structural superlubricity achieved with hydrogen-free graphene nanoflakes. | LitMetric

AI Article Synopsis

  • A new method has been developed to achieve superlubricity on solid surfaces that remains effective in high-humidity conditions, overcoming previous challenges related to water and oxidation.
  • This method uses a combination of microscale graphite flakes and graphene nanoflake-coated hydrogen-free amorphous carbon, leading to a very low coefficient of friction (0.0035) and minimal wear even after prolonged air exposure.
  • The innovation allows for scaling up from tiny contacts to larger surfaces (3 mm) while maintaining efficient lubrication, opening up new possibilities for practical applications in various environments.

Article Abstract

Achieving solid superlubricity in high-humidity environments is of great practical importance yet remains challenging nowadays, due to the complex physicochemical roles of water and concomitant oxidation on solid surfaces. Here we report a facile way to access humidity-insensitive solid superlubricity (coefficient of friction 0.0035) without detectable wear and running-in at a humidity range of 2-80%. Inspired by the concept of structural superlubricity, this is achieved between Au-capped microscale graphite flake and graphene nanoflake-covered hydrogen-free amorphous carbon (GNC a-C). Such GNC a-C exhibits reduced pinning effects of water molecules and weak oxidation, which demonstrates stable structural superlubricity even after air exposure of the surfaces for 365 days. The manufacturability of such design enables the macroscopic scale-up of structural superlubricity, achieving the leap from 4 μm × 4 μm contact to 3 mm ball-supported contact with a wide range of materials. Our results suggest a strategy for the macroscale application of structural superlubricity under ambient condition.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11502714PMC
http://dx.doi.org/10.1038/s41467-024-53462-4DOI Listing

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