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Simulating the non-monotonic strain response of nanoporous multiferroic composites under electric field control.

Authors :
Huang, Shu
Karaba, Christopher T.
Patel, Shreya K.
Neal, Amirr
Tolbert, Sarah H.
Marian, Jaime
Source :
Applied Physics Letters. 5/23/2022, Vol. 120 Issue 21, p1-6. 6p.
Publication Year :
2022

Abstract

In this work, we simulate and analyze the mechanical response of a class of multiferroic materials consisting of a templated porous nanostructure made out of cobalt ferrite (CFO) partially filled by atomic layer deposition (ALD) with a ferroelectric phase of lead zirconate titanate (PZT). The strain in the device is measured when an electric field is applied for varying ALD thicknesses, displaying a non-monotonic dependence with a maximum strain achieved for a coating thickness of 3 nm. To understand this behavior, we apply finite element modeling to the smallest repeatable unit of the nanoporous template and simulate the mechanical response as a function of PZT coating thickness. We find that this non-monotonic response is caused by the interplay between two driving forces opposing one another. First, increased porosity works toward increasing the strain due to a reduced system stiffness. Second, decreased porosity involves a larger mass fraction of PZT, which drives the electro-mechanical response of the structure, thus leading to a larger strain. The balance between these two driving forces is controlled by the shear coupling at the CFO/PZT interface and the effective PZT cross section along the direction of the applied electric field. Our numerical results show that considering a nonlinear piezoelectric response for PZT leads to an improved agreement with the experimental data, consistent with ex situ poling of the nanostructure prior to magnetic measurements. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00036951
Volume :
120
Issue :
21
Database :
Academic Search Index
Journal :
Applied Physics Letters
Publication Type :
Academic Journal
Accession number :
157127447
Full Text :
https://doi.org/10.1063/5.0090252