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Nanoscale Dynamics and Transport in Highly Ordered Low-Dimensional Water
Margarita Russina1, Gerrit Günther1, Veronika Grzimek1
1Helmholtz-Zentrum Berlin für Materialien und Energie , Hahn-Meitner-Platz 1 , 14109 Berlin , Germany.
The Journal of Physical Chemistry Letters
|October 3, 2019
Summary
Water confined in hydrophobic channels exhibits solid-like order and liquid-like dynamics. Neutron scattering reveals cooperative water chains and slower self-diffusion compared to bulk water.
Area of Science:
- Materials Science
- Physical Chemistry
- Nanotechnology
Background:
- Understanding water behavior under confinement is crucial for various applications.
- Hydrophobic nanochannels present unique environments for molecular interactions.
- Previous studies suggest altered water properties in confined spaces.
Purpose of the Study:
- To investigate the structural and dynamic properties of water in hydrophobic one-dimensional channels.
- To elucidate the role of confinement and intermolecular interactions on water's state.
- To compare water's self-diffusion within nanochannels to bulk water.
Main Methods:
- Neutron scattering techniques were employed to probe water structure and dynamics.
- Experiments were conducted in hydrophobic one-dimensional channels with a van der Waals diameter of 0.78 nm.
- Adsorption processes and molecular interactions were analyzed.
Main Results:
- Highly ordered and cooperative water, exhibiting both solid and liquid properties, was observed.
- Water molecules initially occupied pore wall niches, followed by filling of the central pore area.
- Confinement intensified intermolecular interactions, forming ordered hydrogen-bonded water chains and cooperative vibrations.
- Two relaxation processes were identified, including spontaneous position exchange between water molecules.
- Axial self-diffusion was significantly slower than in bulk water due to these exchanges.
Conclusions:
- Confinement in hydrophobic nanochannels induces unique water structures and dynamics.
- Intermolecular interactions are key to forming ordered water chains and cooperative motions.
- Restricted molecular mobility leads to significantly reduced self-diffusion rates within the channels.

