Application of Johnson's approximation in finite element modeling for electric field‐dependent materials

Author:

D'Silva Green Rassell C.1ORCID,Dale Graham2,McLaughlin Garry2,Strawhorne Maureen2,Sinclair Derek C.1,Dean Julian S.1ORCID

Affiliation:

1. Department of Material Science & Engineering University of Sheffield Sheffield UK

2. Kyocera AVX Components Ltd, Coleraine Londonderry UK

Abstract

AbstractJohnson's approximation is implemented in a finite element code to simulate the electric field dependence of a core–shell microstructure material. We show how the microstructure, based here on a 50:50 volume fraction, influences the measured effective permittivity as a function of applied voltage. Using a Johnson's parameter of β = 1.0 × 1010 Vm5/C3, verified from commercial BaTiO3‐based multilayer ceramic capacitors (MLCC), we show how the microstructure and the difference in core and shell conductivities alter the local fields generated and how this influences the voltage dependence of the effective permittivity. Systems that comprise a conductive core‐like material surrounded by a resistive shell experience little or modest voltage dependence due to the shell material providing shielding to large electric fields within the cores. Conversely, if the core material is more resistive than the shell material, substantial voltage dependence occurs with simulations showing over a 50% decrease in the effective permittivity. These simulations give improved understanding of voltage dependence and provide a method to help guide the design of future materials for MLCCs with improved performance.

Publisher

Wiley

Reference36 articles.

1. Analysis of global multi‐layer ceramic capacitor (MLCC) markets 2019–2024. ResearchAndMarkets.com.2019. [cited 2023 June 7]. Available from:https://www.businesswire.com/news/home/20191209005389/en/Analysis‐of‐Global‐Multi‐Layer‐Ceramic‐Capacitor‐MLCC‐Markets‐2019‐2024—ResearchAndMarkets.com

2. Measurement Methodologies for Acoustic Noise Induced by Multilayer Ceramic Capacitors of Power Distribution Network in Mobile Systems

3. Resource efficient exploration of ternary phase space to develop multi-layer ceramic capacitors

4. Domain Size Effect on Dielectric Properties of Barium Titanate Ceramics

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