MEMS cantilever based magnetic field gradient sensor

Dabsch, Alexander and Rosenberg, Christoph and Stifter, Michael and Keplinger, Franz (2017) MEMS cantilever based magnetic field gradient sensor. Journal of Micromechanics and Microengineering, 27 (5). 055014. ISSN 0960-1317

[thumbnail of Dabsch_2017_J._Micromech._Microeng._27_055014.pdf] Text
Dabsch_2017_J._Micromech._Microeng._27_055014.pdf - Published Version

Download (3MB)

Abstract

This paper describes major contributions to a MEMS magnetic field gradient sensor. An H-shaped structure supported by four arms with two circuit paths on the surface is designed for measuring two components of the magnetic flux density and one component of the gradient. The structure is produced from silicon wafers by a dry etching process. The gold leads on the surface carry the alternating current which interacts with the magnetic field component perpendicular to the direction of the current. If the excitation frequency is near to a mechanical resonance, vibrations with an amplitude within the range of 1–103 nm are expected. Both theoretical (simulations and analytic calculations) and experimental analysis have been carried out to optimize the structures for different strength of the magnetic gradient. In the same way the impact of the coupling structure on the resonance frequency and of different operating modes to simultaneously measure two components of the flux density were tested. For measuring the local gradient of the flux density the structure was operated at the first symmetrical and the first anti-symmetrical mode. Depending on the design, flux densities of approximately 2.5 µT and gradients starting from 1 µT mm−1 can be measured.

Item Type: Article
Subjects: Middle East Library > Multidisciplinary
Depositing User: Unnamed user with email support@middle-eastlibrary.com
Date Deposited: 09 Jun 2023 06:21
Last Modified: 20 Sep 2024 04:21
URI: http://editor.openaccessbook.com/id/eprint/1054

Actions (login required)

View Item
View Item