Temperature dependency of silicon structures for magnetic field gradient sensing

Dabsch, Alexander and Rosenberg, Christoph and Stifter, Michael and Keplinger, Franz (2018) Temperature dependency of silicon structures for magnetic field gradient sensing. Journal of Micromechanics and Microengineering, 28 (2). 025002. ISSN 0960-1317

[thumbnail of Dabsch_2018_J._Micromech._Microeng._28_025002.pdf] Text
Dabsch_2018_J._Micromech._Microeng._28_025002.pdf - Published Version

Download (2MB)

Abstract

This work describes the temperature dependence of two sensors for magnetic field gradient sensors and demonstrates a structure to compensate for the drift of resonance frequency over a wide temperature range. The temperature effect of the sensing element is based on internal stresses induced by the thermal expansion of material, therefore FEM is used to determine the change of the eigenvalues of the sensing structure. The experimental setup utilizes a Helmholtz coil system to generate the magnetic field and to excite the MEMS structure with Lorentz forces. The MEMS structure is placed on a plate heated with resistors and cooled by a Peltier element to control the plate temperature. In the second part, we describe how one can exploit temperature sensitivity for temperature measurements and we show the opportunity to include the temperature effect to increase the sensitivity of single-crystal silicon made flux density gradient sensors.

Item Type: Article
Subjects: South Archive > Multidisciplinary
Depositing User: Unnamed user with email support@southarchive.com
Date Deposited: 09 Jun 2023 06:19
Last Modified: 23 Sep 2024 04:33
URI: http://ebooks.eprintrepositoryarticle.com/id/eprint/1014

Actions (login required)

View Item
View Item