Journal of Applied Physics · 2014 · 16 citations · 29 references
Atomic Force MicroscopyEngineeringMicroscopyAfm Probe CantileverMicroscopy MethodAtomic Force MicroscopeNanoscale ModelingNanometrologySpatial ResolutionExperimental ResponseNanomechanicsBiophysicsMaterials ScienceDielectric SpectroscopyNanotechnologyNanomaterialsMicrofabricationSpectroscopyScanning Probe MicroscopyApplied PhysicsScanning Force MicroscopyMedicine
The use of an atomic force microscope for studying molecular dynamics through dielectric spectroscopy with spatial resolution in the nanometer scale is a recently developed approach. However, difficulties in the quantitative connection of the obtained data and the material dielectric properties, namely, frequency dependent dielectric permittivity, have limited its application. In this work, we develop a simple electrical model based on physically meaningful parameters to connect the atomic force microscopy (AFM) based dielectric spectroscopy experimental results with the material dielectric properties. We have tested the accuracy of the model and analyzed the relevance of the forces arising from the electrical interaction with the AFM probe cantilever. In this way, by using this model, it is now possible to obtain quantitative information of the local dielectric material properties in a broad frequency range. Furthermore, it is also possible to determine the experimental setup providing the best sensitivity in the detected signal.
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