Stress–Charge Nonlinear Physical Description and Tensor Symmetries for Piezoelectric Materials

Author:

Jaramillo-Alvarado A. F.1ORCID,Torres Jacome A.1,Rosales-Quintero P.1ORCID,Vazquez-Leal H.2ORCID,Diaz-Arango G.3ORCID,Huerta-Chua J.3,Martínez-Castillo J.4ORCID

Affiliation:

1. Electronics Department, Instituto Nacional de Astrofísica, Óptica y Electrónica (INAOE), Luis Enrique Erro # 1, Tonantzintla, Puebla 72840, Mexico

2. Electronic Instrumentation Faculty, Universidad Veracruzana, Cto. Gonzalo Aguirre Beltran S/N, Xalapa, Veracruz 91000, Mexico

3. Tecnologico Nacional de Mexico, Instituto Tecnologico Superior de Poza Rica, Luis Donaldo Colosio Murrieta S/N, Arroyo del Maiz, Poza Rica, Veracruz 93230, Mexico

4. Research Center in Micro and Nanotechnology, Universidad Veracruzana, Boca del Río, Veracruz 94294, Mexico

Abstract

Nonlinear piezoelectric materials are raised as a great replacement for devices that require low power consumption, high sensitivity, and accurate transduction, fitting with the demanding requirements of new technologies such as the Fifth-Generation of telecommunications (5G), the Internet of Things (IoT), and modern radio frequency (RF) applications. In this work, the state equations that correctly predict the nonlinear piezoelectric phenomena observed experimentally are presented. Furthermore, we developed a fast methodology to implement the state equations in the main FEM simulation software, allowing an easy design and characterization of this type of device, as the symmetry structures for high-order tensors are shown and explained. The operation regime of each high-order tensor is discussed and connected with the main nonlinear phenomena reported in the literature. Finally, to demonstrate our theoretical deductions, we used the experimental measurements, which presented the nonlinear effects, which were reproduced through simulations, obtaining maximum percent errors for the effective elasticity constants, relative effective permittivity, and resonance frequencies of 0.79%, 2.9%, and 0.3%, respectively, giving a proof of the potential of the nonlinear state equations presented for the unifying of all nonlinear phenomena observed in the piezoelectric devices.

Publisher

MDPI AG

Subject

General Materials Science

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