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October 2, 2025The Journal of Physical Chemistry B2 citations

How Surface Functionalization Controls Confined Electrolyte Structure and Dynamics at Graphene Interfaces

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LHL. D. HessTNThi Yen Nhi NguyenADAnthony H. Dee

Key Points

  • Functional group identity and abundance shape interfacial structure and dynamics significantly.
  • Polar groups like -COOH and -OH suppress water mobility while nonpolar groups enhance diffusivity.
  • Systematic analysis reveals distinct roles of functionalization in ion adsorption and structuring effects.
  • These findings offer a quantitative framework for designing surfaces in electrochemical technologies.

Abstract

Understanding how surface chemistry modulates confined electrolyte behavior is critical for advancing electrochemical, membrane, and nanofluidic technologies. Here, we present a comprehensive molecular dynamics study of aqueous NaCl solutions confined between graphene functionalized with -COOH, -OH, ═O, and -CH3 groups across multiple surface coverages and electrolyte concentrations. We systematically disentangle how functional group identity and abundance independently shape interfacial layering, ion adsorption, and water dynamics. Polar, hydrogen-bonding groups (-COOH, -OH) strongly structure the interface and suppress water mobility, while weakly polar (═O) and nonpolar groups (-CH3) lead to more diffuse, mobile profiles. Importantly, we show that functional group chemistry sets the morphology of interfacial structure, while coverage scales its intensity, a distinction that holds across electrolyte concentrations. These findings enable a quantitative framework for designing chemically heterogeneous surfaces that precisely modulate ion and solvent behavior in complex electrolyte environments.

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Cite This Study

Hess et al. (2025) studied this question.

synapsesocial.com/papers/68de8eaeaa6cec72c69ea888https://doi.org/10.1021/acs.jpcb.5c04964
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