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Probing the Structure and Dynamics of Interfacial Water with Scanning Tunneling Microscopy and Spectroscopy
Published on: May 27, 2018
3D Electron Microscopy Reveals Evidence for Strong Electric Fields at Nanoconfined Air-Water Interfaces
Ryota Saito1, Haruka Tsuruda1, Chenghui Zhu2
1Department of Aeronautics and Astronautics, Kyushu University, 744 Motooka, Fukuoka819-0395, Japan.
None:
Strong electric fields at air-water interfaces are widely invoked to explain accelerated interfacial chemistry, yet direct, probe-free evidence under evaporation-free conditions has remained challenging. Here, we confine aqueous solutions and air within ∼50 nm-diameter multiwalled carbon nanotubes to stabilize nanoscale air-water interfaces for three-dimensional transmission electron microscopy. Reconstructed multiphase structures reveal ∼10 nm gas domains separated from the nanotube walls by ultrathin water films spanning molecular to nanometer thicknesses. Curvature analysis yields Laplace and disjoining pressure distributions indicating a repulsive pressure of ∼10 MPa that prevents film collapse. This repulsion is consistent with an interfacial electric field on the order of several volts per nanometer, primarily associated with oriented water dipoles and potentially enhanced by the electric double layer. Consistent with this inferred field strength, the reduction of chloroauric acid (HAuCl4) to gold nanoparticles occurs exclusively within ∼2 nm of the interface. These results provide evidence for intense, spatially confined electric fields at air-water interfaces through the combined observations of strong non-Derjaguin-Landau-Verwey-Overbeek repulsive pressures and localized interfacial Au reduction and establish their fundamental role in nanoscale interfacial chemistry across chemical, environmental, and energy-relevant systems.
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