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Selection of higher eigenmode amplitude based on dissipated power and virial contrast in bimodal atomic force microscopy
19
Citations
29
References
2014
Year
Dissipated Power ContrastEngineeringMicroscopyVirial ContrastMolecular DynamicsPhase ContrastMechanics ModelingElectron MicroscopyMicroscopy MethodNanoscale ModelingMolecular SimulationBiophysicsPhysicsAtomic PhysicsDissipated PowerPhysical ChemistrySpectroscopyMaterials CharacterizationApplied PhysicsScanning Probe MicroscopyHigher EigenmodeScanning Force MicroscopyAmplitude RatioMedicine
This paper explores the effect of the amplitude ratio of the higher to the fundamental eigenmode in bimodal atomic force microscopy (AFM) on the phase contrast and the dissipated power contrast of the higher eigenmode. We explore the optimization of the amplitude ratio in order to maximize the type of contrast that is most relevant to the particular study. Specifically, we show that the trends in the contrast range behave differently for different quantities, especially the dissipated power and the phase, with the former being more meaningful than the latter (a similar analysis can be carried out using the virial, for which we also provide a brief example). Our work is based on numerical simulations using two different conservative-dissipative tip-sample models, including the standard linear solid and the combination of a dissipation coefficient with a conservative model, as well as experimental images of thin film Nafion® proton exchange polymers. We focus on the original bimodal AFM method, where the higher eigenmode is driven with constant amplitude and frequency (i.e., in “open loop”).
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