Measurement of the complete interaction force curve at the nanoscale
arXiv:1205.1932 · doi:10.1063/1.4766172
Abstract
The force between two interacting particles as a function of distance is one of the most fundamental curves in science. In this regard, Atomic Force Microscopy (AFM) represents the most powerful tool in nanoscience but with severe limits when it is to probe attractive interactions with high sensitivity. The Force Feedback Microscope (FFM) described here, removes from AFM the well known jump to contact problem that precludes the complete exploration of the interaction curve and the study of associated energy exchanges. The FFM makes it possible to explore tip-surface interactions in the entire range of distances with a sensitivity better than 1 pN. FFM stands out as a radical change in AFM control paradigms. With a surprisingly simple arrangement it is possible to provide the AFM tip with the right counterforce to keep it fixed at any time. The counterforce is consequently equal to the tip-sample force. The force, force gradient and damping are simultaneously measured independently of the tip position. This permits the measurement of energy transfer in thermodynamic transformations. Here we show some FFM measurement examples of the complete interaction force curve and in particular that the FFM can follow the nucleation of a water bridge by measuring the capillary attractive force at all distances, without jump to contact despite the large attractive capillary force. Real time combination of the measured parameters will lead to new imaging modalities with chemical contrast in different environments.
4 pages, 4 figures
Cited by in corpus (10)
- Universal Vectorial and Ultrasensitive Nanomechanical Force Field Sensor
- Imaging material properties of biological samples with a Force Feedback Microscope
- Spectroscopic investigation of local mechanical impedance of living cells
- System analysis of Force Feedback Microscopy
- Out of equilibrium anomalous elastic response of a water nano-meniscus
- Small amplitude Dynamic AFM: quantifying interactions with different tip detection and excitation schemes in presence of additional resonances
- Comparison between Atomic Force Microscopy and Force Feedback Microscopy static force curves
- Variable frequency characterization of interaction at nanoscale in linear dynamic AFM: an FFM primer
- Frequency dependent visco-elastic properties of a water nanomeniscus : an AFM study in Force Feedback Mode
- Proximity effect on hydrodynamic interaction between a sphere and a plane measured by Force Feedback Microscopy at different frequencies