Direct observation of stick-slip movements of water nanodroplets induced by an electron beam.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 22517747.
- Also identified by DOI 10.1073/pnas.1200457109 and PMC identifier 3358860.
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Abstract
Dynamics of the first few nanometers of water at the interface are encountered in a wide range of physical, chemical, and biological phenomena. A simple but critical question is whether interfacial forces at these nanoscale dimensions affect an externally induced movement of a water droplet on a surface. At the bulk-scale water droplets spread on a hydrophilic surface and slip on a nonwetting, hydrophobic surface. Here we report the experimental description of the electron beam-induced dynamics of nanoscale water droplets by direct imaging the translocation of 10- to 80-nm-diameter water nanodroplets by transmission electron microscopy. These nanodroplets move on a hydrophilic surface not by a smooth flow but by a series of stick-slip steps. We observe that each step is preceded by a unique characteristic deformation of the nanodroplet into a toroidal shape induced by the electron beam. We propose that this beam-induced change in shape increases the surface free energy of the nanodroplet that drives its transition from stick to slip state.
Medical subject headings
- Algorithms
- Electrons
- Models, Chemical
- Nanostructures
- Water