학술논문

Finite Element Analysis and Optimization of Acoustically Actuated Magnetoelectric Microantennas
Document Type
Periodical
Source
IEEE Transactions on Antennas and Propagation IEEE Trans. Antennas Propagat. Antennas and Propagation, IEEE Transactions on. 71(6):4640-4650 Jun, 2023
Subject
Fields, Waves and Electromagnetics
Aerospace
Transportation
Components, Circuits, Devices and Systems
Film bulk acoustic resonators
Magnetomechanical effects
Magnetic resonance
Wireless communication
Magnetoacoustic effects
Stress
Magnetostriction
FBAR
magnetoelectric (ME) antenna
magnetostriction
wireless sensing
Language
ISSN
0018-926X
1558-2221
Abstract
The acoustically actuated magnetoelectric (ME) microantenna integrated on a film bulk acoustic resonator (FBAR) has exhibited a potential for communication and wireless sensing applications owing to the breakage of traditional antenna size limitation. However, the development is still at infancy, and much is unknown and unclear for the design of the ME microantennas and material selection. This article presents a finite element analysis-based method and a magnetic dipole model to analyze the radiation characteristics of ME antenna. The effects of piezoelectric (PE) and magnetostrictive (MS) materials and their thicknesses, shape, and area of the electrode, and damping factor of the MS material on the radiation characteristics of ME antenna are investigated in detail. Results show that with an optimized design and proper materials combination, FBARs with an ME microantenna of the size $200\,\, {}\times {}200\mu \text{m}$ could emit electromagnetic waves over 30 m with a maximum radiation power of up to $3.4\,\, {}\times {}10^{-7}$ W (−34.7 dBm), suitable for short-range communication and wireless sensing applications, demonstrating a great potential of the ME microantennas.