Design and fabrication of a microelectromechanical system resonator based on two orthogonal silicon beams with integrated mirror for monitoring in-plane magnetic field

Author:

Acevedo-Mijangos Jesús1,Ramírez-Treviño Antonio2,May-Arrioja Daniel A1,LiKamWa Patrick3,Vázquez-Leal Héctor4,Herrera-May Agustín L56ORCID

Affiliation:

1. Fiber and Integrated Optics Laboratory, Centro de Investigaciones en Optica, Aguascalientes, Mexico

2. Centro de Investigación y Estudios Avanzados del Instituto Politécnico Nacional, Mexico City, Mexico

3. CREOL, The College of Optics and Photonics, University of Central Florida, Orlando, FL, USA

4. Facultad de Instrumentación Electrónica, Universidad Veracruzana, Xalapa, Mexico

5. Micro and Nanotechnology Research Center, Universidad Veracruzana, Boca del Río, México

6. Facultad de Ingeniería de la Construcción y el Hábitat, Universidad Veracruzana, Boca del Río, México

Abstract

We present a resonant magnetic field sensor based on microelectromechanical systems technology with optical detection. The sensor has single resonator composed of two orthogonal silicon beams (600 µm × 26 µm × 2 µm) with an integrated mirror (50 µm × 34 µm × 0.11 µm) and gold tracks (16 µm × 0.11 µm). The resonator is fabricated using silicon-on-insulator wafer in a simple bulk micromachining process. The sensor has easy performance that allows its oscillation in the first bending vibration mode through the Lorentz force for monitoring in-plane magnetic field. Analytical models are developed to predict first bending resonant frequency, quality factor, and displacements of the resonator. In addition, finite element method models are obtained to estimate the resonator performance. The results of the proposed analytical models agree well with those of the finite element method models. For alternating electrical current of 30 mA, the sensor has a theoretical linear response, a first bending resonant frequency of 43.8 kHz, a sensitivity of 46.1 µm T−1, and a power consumption close to 54 mW. The experimental resonant frequency of the sensor is 53 kHz. The proposed sensor could be used for monitoring in-plane magnetic field without a complex signal conditioning system.

Funder

PFCE 2019

Publisher

SAGE Publications

Subject

Mechanical Engineering

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