Angular magnetic field dependence of a doubly clamped magnetoelectric resonator

Author:

Mion Thomas1ORCID,Lefler Benjamin M.2ORCID,Staruch Margo3ORCID,Bennett Steven3ORCID,Gottron Norman4,Lofland Samuel E.5ORCID,Bussmann Konrad3ORCID,Gangemi Nicholas3ORCID,Baldwin Jeffrey3,Finkel Peter3ORCID

Affiliation:

1. American Society for Engineering Education Postdoc Fellow at US Naval Research Laboratory 1 , 4555 Overlook Ave SW, Washington, DC 02375, USA

2. Department of Materials Science and Engineering, Drexel University 2 , Philadelphia, Pennsylvania 19104, USA

3. Materials Science and Technology Division, US Naval Research Laboratory 3 , 4555 Overlook Ave. SW, Washington, DC 02375, USA

4. Department of Electrical and Computer Engineering, Carnegie Mellon University 4 , Pittsburgh, Pennsylvania 15213, USA

5. Department of Physics, Rowan University 5 , Glassboro, New Jersey 08028-1701, USA

Abstract

Angular dependence of magnetic field response of fully suspended resonant microelectromechanical double-clamped magnetoelectric beams was investigated as the basis for a vector magnetometer utilizing the magnetically induced change in fundamental resonance frequency. Strain-coupled magnetostrictive iron cobalt (FeCo) and piezoelectric aluminum nitride layers together constitute a magnetoelectric heterostructure with a high magnetic field sensitivity of 70 Hz/mT along the beam axis and a transfer function of 47 V/T at 10 Hz. The fundamental frequency shift to an external magnetic field is found to be strongly anisotropic with a relative variation of more than 3% between perpendicular and parallel field orientations with respect to the long axis of the beam at a field of 100 mT. This design can form the basis for an on-chip high sensitivity vector magnetometer operating with ultra-low power when multiplexed with two or more resonators.

Funder

Office of Naval Research

American Society for Engineering Education

U.S. Naval Research Laboratory

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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