Increasing the Q-factor of resonant cantilevers in magnetic force microscopy through helium gas flow

Author:

Abas Asim12ORCID,Geng Tao12,Meng Wenjie12,Touqeer Muhammad12ORCID,Esmaeilzadeh Behnam12ORCID,Feng Qiyuan12,Wang Ze123,Yubin Hou123,Lu Qingyou12345ORCID

Affiliation:

1. High Magnetic Field Laboratory, Hefei Institutes of Physical Science, Chinese Academy of Sciences 1 , Hefei 230031, China

2. Department of Hefei National Research Center for Physical Sciences at the Microscale, University of Science and Technology of China 2 , Hefei 230026, China

3. Anhui Laboratory of Advanced Photon Science and Technology, University of Science and Technology of China 3 , Hefei 230026, China

4. Anhui Province Key Laboratory of Condensed Matter Physics at Extreme Conditions, High Magnetic Field Laboratory of Anhui 4 , Hefei 230031, China

5. Hefei Science Center, Chinese Academy of Sciences 5 , Hefei 230031, China

Abstract

To obtain high-resolution magnetic force microscopy (MFM) images, it is essential to have a cantilever with a high-quality factor. However, conventional vibrating cantilevers typically have quality factor values in the range of a few hundred, which limits their sensitivity for MFM measurements. To address this limitation, numerous studies have explored methods to enhance the quality factor in different environments, including vacuum, air, and liquid. This study introduces a novel approach for improving the quality factor using flowing helium gas. By selecting helium gas with a low viscosity coefficient, we successfully achieved a higher quality factor (Q-factor) of MFM microcantilever oscillations at room temperature in one atmosphere compared with the Q-factor in air. This provides a potential approach for achieving high-resolution MFM measurements under room temperature conditions. By optimizing the gas flow rate at room temperature in one atmosphere, we successfully obtained a higher MFM cantilever oscillation Q-factor and clearer MFM images compared with the air. The experimental results revealed a long and narrow resonant curve, and the quality factor significantly increased to 778.2, which is 3.8 times higher than that observed in air 205.4. Furthermore, systematic investigations demonstrated the capability of this approach to produce high-resolution MFM images of videotape track patterns under the optimized helium gas flow rate of 60 mm/s.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Hefei Science Center CAS

Hefei Center for Physical Science and Technology

Publisher

AIP Publishing

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