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April 3, 2026Nature Communications3 citationsOpen Access

Machine-learning enhanced simulations predict graphene is hydrophobic and microscopically not wetting transparent

DHDianwei HouYHYevhen HorbatenkoSRStefan Ringe

Key Points

  • The research aims to clarify graphene's wettability and interactions with water, resolving existing debates.
  • Utilized machine-learning enhanced molecular dynamics simulations.
  • Simulated vibrational sum-frequency generation spectra for analysis.
  • Investigated water intercalation effects in monolayer and multilayer graphene.
  • Pristine graphene is demonstrated to be intrinsically hydrophobic.
  • Monolayer graphene shows hydrophilicity due to signal cancellation from intercalated water.
  • Multilayer graphene exhibits unfavorable conditions for water intercalation, explaining thickness-dependent wetting behaviors.

Abstract

The interaction between graphene and water is fundamental to applications ranging from filtration to nano-electronics, yet the intrinsic wettability of graphene remains a subject of longstanding debate. In particular, it is disputed whether graphene is wetting transparent—transmitting the wettability of an underlying substrate to the surface. Here, we show using machine-learning enhanced molecular dynamics simulations that pristine graphene is intrinsically hydrophobic and microscopically not wetting transparent. By simulating vibrational sum-frequency generation spectra, we demonstrate that the apparent hydrophilic signatures often observed for monolayer graphene on hydrophilic substrates originate not from wetting transparency, but from signal cancellation caused by water molecules intercalated between the graphene and the substrate. Furthermore, we find that while water intercalation is thermodynamically favorable for monolayers, it becomes unfavorable for multilayer graphene, explaining experimentally observed thickness-dependent wetting behaviors. These findings provide a unified microscopic framework for understanding graphene-water interactions and clarify the crucial role of confined water in two-dimensional material interfaces. This study demonstrates that pristine graphene is intrinsically hydrophobic, regardless of the underlying substrate. The apparent hydrophilicity observed experimentally is shown to arise from signal cancellation by intercalated water molecules.

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Cite This Study

Hou et al. (2026) studied this question.

synapsesocial.com/papers/69cf58285a333a8214609596https://doi.org/10.1038/s41467-026-71053-3
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