Capacitive distance control for measuring particulate magnetic media with Magnetic ForceMicroscopy.

SCHWENK, J.;Hug, H. J.;Marioni, M. A.;Hauet, T.;Piraux, Luc;et.al.
(2015) INTERMAG 2015 - IEEE International Magnetics Conference — Location: Beijing - China (11.May.2015)

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Authors
  • SCHWENK, J.Nanoscale Materials Science - Switzerland
    Author
  • Hug, H. J.Universïtat Basel - Switzerland
    Author
  • Marioni, M. A.Nanoscale Materials Science, EMPA - Switzerland
    Author
  • Hauet, T.Institut Jean Lamour, Université de Lorraine - France
    Author
  • Author
  • Antohe, VladUCLouvain
    Author
  • Srivastava, Sandeep KumarUCLouvain
    Author
  • Piraux, LucUCLouvain
    Author
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Abstract
It is challenging to precisely image magnetic structures in a context of pronounced topography. Tapping mode techniques have been developed to provide a practical solution to the need for magnetic characterization in these situations. By successively scanning the topography of the sample and its magnetic signal on a line-by-line basis, the sample's inherent topography and most dust contamination can be dealt with, constituting a convenient method for the study of e.g. patterned media, or other small structures. But as research and development push the relevant dimensions downward, higher sensitivity and spatial resolution are required of the measurement. It thus becomes necessary to move to vacuum, whereby the cantilever sensitivity is increased and adhered water layers can be removed. Vacuum operation also facilitates low temperature measurements, which generally present stability advantages apart from the possibility of applying large magnetic fields. The quantitative evaluation of measurement data introduces a further constraint on the measurement, that the tip must not be modified between measurements.
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Citations

SCHWENK, J., Hug, H. J., Marioni, M. A., Hauet, T., Hehn, M., Abreu Araujo, F., Antohe, V., Srivastava, S. K., & Piraux, L. (2015). Capacitive distance control for measuring particulate magnetic media with Magnetic ForceMicroscopy. Intermag, BE - 07. https://doi.org/10.1109/intmag.2015.7156676 (Original work published 2015)