FAST Group

@fast-group.bsky.social

Research Group at the University of Cambridge focused on machine learning enhanced atomistic simulations. Machine-learned solutions. FAST.

Excited to see our work “Protons Accumulate at the Graphene−Water Interface” now published in ACS Nano! 🎉 Using ML-driven MD simulations, we uncover why hydronium prefers the graphene–water interface while hydroxide does not. 💧⚡🔬 🔗 doi.org/10.1021/acsn...

Protons Accumulate at the Graphene–Water Interface

Water’s ability to autoionize into hydroxide and hydronium ions profoundly influences surface properties, rendering interfaces either basic or acidic. While it is well-established that protons show an affinity to the air–water interface, a critical knowledge gap exists in technologically relevant surfaces like the graphene–water interface. Here we use machine learning-based simulations with first-principles accuracy to unravel the behavior of hydroxide and hydronium ions at the graphene–water interface. Our findings reveal that protons accumulate at the graphene–water interface, with the hydronium ion predominantly residing in the first contact layer of water. In contrast, the hydroxide ion exhibits a bimodal distribution, found both near the surface and further away from it. Analysis of the underlying electronic structure reveals local polarization effects, resulting in counterintuitive charge rearrangement. Proton propensity to the graphene–water interface challenges the interpretation of surface experiments and is expected to have far-reaching consequences for ion conductivity, interfacial reactivity, and proton-mediated processes.

doi.org

For our first ‘Meet the FAST Group’ post … Name: Xavi Role: Junior PhD Student Likes: Football and Nanoconfinement Dislikes: PBE with no D3 Most likely to: debug your life

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Hello Bluesky. This is our new group account for the FAST group, hosted at the Cavendish Laboratory in Cambridge. We are fascinated by using computational tools to understand challenging materials and systems at the atomistic level. Watch this space to learn more about our work 🚀

Toy model of atoms.