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March 27, 2026Science Advances2 citationsOpen Access

Altered morphology and diffusivity of water confined in MXenes: Machine learning–accelerated computations combined with experiments

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JTJiawei TangWSWeiwei SunCCChaofan Chen

Key Points

  • This research aims to explore the unique behaviors of water confined in MXenes and how structural properties affect its dynamics and transport capabilities.
  • Utilized machine learning-accelerated ab initio molecular dynamics simulations
  • Conducted x-ray diffraction (XRD) and inelastic neutron scattering (INS) experiments
  • Analyzed the thermodynamic and dynamic behavior of confined water between MXene layers
  • Established a linear combination of exponential model to describe water diffusivity
  • Identified unique interlayer spacing and staging characteristics based on functionalized MXenes
  • Characterized the dependence of water polarization on intercalated molecule morphology
  • Proved strong correlation between computational models and experimental measurements
  • Suggested surface chemistry and water content variations as strategies for enhancing electrochemical energy storage

Abstract

Nanoconfined water exhibits unique properties compared to bulk water due to limited quantities, frustrated hydrogen bonding, and surface interactions, which are fundamental for energy storage and transport applications. We integrate machine learning–accelerated ab initio molecular dynamics with x-ray diffraction (XRD) and inelastic neutron scattering (INS) to systematically analyze the thermodynamic and dynamic behavior of water confined between functionalized (-F, -O, and -OH) two-dimensional (2D) Ti 3 C 2 T x MXene layers. As water intercalates between layers, the interlayer spacing exhibits layer-dependent staging characteristics. The water polarization can be flipped by the count and morphology of intercalated molecules interacting with MXene surface groups, resulting in varying electrostatic potential profiles. On the basis of interfacial electrostatic potential, hydrogen bond lifetime, and molecular orientation, we establish a linear combination of exponential model describing water diffusivity. These computational insights align well with experimental x-ray and neutron measurements, suggesting strategies for tuning water morphology and transport by tailoring MXene surface chemistry and water content for electrochemical energy storage and nanofluidic applications.

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Cite This Study

Tang et al. (2026) studied this question.

synapsesocial.com/papers/69c61f5615a0a509bde17d96https://doi.org/10.1126/sciadv.adz1780
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Proton‐Driven Dynamic Behavior of Nanoconfined Water in Hydrophilic MXene Sheets2024
  2. 2Proton‐Driven Dynamic Behavior of Nanoconfined Water in Hydrophilic MXene Sheets2024 · 30 citations
  3. 3Conductivity hysteresis in MXene driven by structural dynamics of nanoconfined water2025 · 19 citations
  4. 4Water-Mediated Ion Selectivity in 2D MXene Channels2026
  5. 5Water‐Induced Local Redox Reactions on Individual Ti <sub>3</sub> C <sub>2</sub> T <i> <sub>x</sub> </i> MXene Flakes in Aqueous Environment2025