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Updated: Jun 4, 2026

Optimizing Magnetic Force Microscopy Resolution and Sensitivity to Visualize Nanoscale Magnetic Domains
Published on: July 20, 2022
Implementation of radio-frequency magnetic fields for electron spin resonance in a low-temperature atomic force
Raffael Spachtholz1, Lisanne Sellies1, Franziska Bruckmann1
1Institute of Experimental and Applied Physics, University of Regensburg, 93053 Regensburg, Germany.
None:
The implementation of electron spin resonance in scanning tunneling microscopy (ESR-STM) represented a milestone in controlling spin systems at atomic scales. To drive spin resonance, a radio-frequency (RF) magnetic field is required. Yet, so far, in ESR-STM, instead of an RF magnetic field an RF electric field has been used for driving, which translates into an effective RF magnetic field. For cases in which such a field-conversion mechanism is not feasible, we developed an implementation of a low-GHz RF magnetic field in a scanning-probe setup. To this end, we utilized a single-loop coil based on a flexible polyimide printed-circuit-board to generate the RF magnetic field. To locally enhance the RF magnetic field in the scanning-probe junction, we used a gold-microstrip on an insulating support as a sample surface. We found that up to 3 GHz, the transmission only moderately depends on frequency and exhibits no sharp resonances. This development enabled the implementation of ESR in atomic force microscopy, as was demonstrated for individual pentacene molecules.
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