Calibration of higher eigenmodes of cantilevers
Abstract
A method is presented for calibrating the higher eigenmodes (resonant modes) of atomic force microscopy cantilevers that can be performed prior to any tip-sample interaction. The method leverages recent efforts in accurately calibrating the first eigenmode by providing the higher-mode stiffness as a ratio to the first mode stiffness. A one-time calibration routine must be performed for every cantilever type to determine a power-law relationship between stiffness and frequency, which is then stored for future use on similar cantilevers. Then, future calibrations only require a measurement of the ratio of resonant frequencies and the stiffness of the first mode. This method is verified through stiffness measurements using three independent approaches: interferometric measurement, AC approach-curve calibration, and finite element analysis simulation. Power-law values for calibrating higher-mode stiffnesses are reported for several cantilever models. Once the higher-mode stiffnesses are known, the amplitude of each mode can also be calibrated from the thermal spectrum by application of the equipartition theorem.
- Publication:
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Review of Scientific Instruments
- Pub Date:
- July 2016
- DOI:
- arXiv:
- arXiv:1604.00601
- Bibcode:
- 2016RScI...87g3705L
- Keywords:
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- Condensed Matter - Mesoscale and Nanoscale Physics
- E-Print:
- 14 pages, 10 figures