A 3D meshless electromechanical model incorporating electrode inertia for accurate prediction of resonance characteristics in disk-type MEMS resonators

In this study, wave propagation in disk-type piezoelectric resonators is investigated by extending the polynomial modeling approach to incorporate electrode inertia. For sufficiently thin metallic electrodes, their elastic stiffness is neglected and only their mass contribution is retained. At both the top and bottom electrodes, the traction is assumed to balance the inertia of the respective electrode layers. This formulation modifies the axial boundary conditions, enabling accurate evaluation of the resonance and antiresonance frequencies (RFs and AFs). The results are compared with those obtained under the conventional stress-free assumption, demonstrating the significant influence of electrode inertia on the dynamic response. The effect of the thickness ratio, defined as the ratio of the driving electrode thickness to the piezoelectric film thickness, is further examined on longitudinal vibration frequencies and associated dispersion curves. It is shown that increasing the thickness ratio reduces both resonant and antiresonant frequencies. In addition, the presence of finite electrode thickness lowers the dispersion frequencies at a fixed mass ratio. These findings highlight the necessity of incorporating electrode inertia in the accurate modeling of MEMS disk resonators and provide reliable guidance for the design of devices requiring precisely controlled resonance characteristics.

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Publication Details

Journal
The Journal of Strain Analysis for Engineering Design
Published
2026-09-22
DOI
https://doi.org/10.1177/03093247261488001
Primary Topic
Advanced MEMS and NEMS Technologies
Type
article
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A 3D meshless electromechanical model incorporating electrode inertia for accurate prediction of resonance characteristics in disk-type MEMS resonators

Rabab Raghib, Hassna Khalfi, Abdelmajid Bybi, L. Elmaimouni et al.
The Journal of Strain Analysis for Engineering Design
Advanced MEMS and NEMS Technologies
article

A 3D meshless electromechanical model incorporating electrode inertia for accurate prediction of resonance characteristics in disk-type MEMS resonators

Rabab Raghib, Hassna Khalfi, Abdelmajid Bybi, L. Elmaimouni, Ismail Naciri, Zakaria Ech-chaachoui, Khalid Ait Cheikh, Lahcen EL Maimouni, Jiangong Yu
article en

Abstract

In this study, wave propagation in disk-type piezoelectric resonators is investigated by extending the polynomial modeling approach to incorporate electrode inertia. For sufficiently thin metallic electrodes, their elastic stiffness is neglected and only their mass contribution is retained. At both the top and bottom electrodes, the traction is assumed to balance the inertia of the respective electrode layers. This formulation modifies the axial boundary conditions, enabling accurate evaluation of the resonance and antiresonance frequencies (RFs and AFs). The results are compared with those obtained under the conventional stress-free assumption, demonstrating the significant influence of electrode inertia on the dynamic response. The effect of the thickness ratio, defined as the ratio of the driving electrode thickness to the piezoelectric film thickness, is further examined on longitudinal vibration frequencies and associated dispersion curves. It is shown that increasing the thickness ratio reduces both resonant and antiresonant frequencies. In addition, the presence of finite electrode thickness lowers the dispersion frequencies at a fixed mass ratio. These findings highlight the necessity of incorporating electrode inertia in the accurate modeling of MEMS disk resonators and provide reliable guidance for the design of devices requiring precisely controlled resonance characteristics.

The Journal of Strain Analysis for Engineering Design
Mohammed V University (MA), Université Ibn Zohr (MA), Office Régional de Mise en Valeur Agricole de Ouarzazate (MA), Henan Polytechnic University (CN)
Openalex Percentile: Top 20%
Advanced MEMS and NEMS Technologies
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A 3D meshless electromechanical model incorporating electrode inertia for accurate prediction of resonance characteristics in disk-type MEMS resonators — Rabab Raghib, Hassna Khalfi, et al. · The Journal of Strain Analysis for Engineering Design (2026) | TGRS Research Map | TGRS