Porous Structure Enhances the Longitudinal Piezoelectric Coefficient and Electromechanical Coupling Coefficient of Lead‐Free (Ba0.85Ca0.15)(Zr0.1Ti0.9)O3

Author:

Li Zihe1ORCID,Roscow James1,Khanbareh Hamideh1,Davies Philip R.2,Han Guifang3,Qin Jingyu3,Haswell Geoff4,Wolverson Daniel5,Bowen Chris1

Affiliation:

1. Centre for Integrated Materials Processes & Structures Department of Mechanical Engineering University of Bath Claverton Down Bath BA27AY UK

2. Cardiff Catalysis Institute School of Chemistry Cardiff University Park Place Cardiff CF10 3AT UK

3. Key Laboratory for Liquid‐Solid Structural Evolution and Processing of Materials (Ministry of Education) School of Materials Science and Engineering Shandong University Jinan 250061 China

4. EMD Ltd. The Old Manse 29 St Mary St Ilkeston Derbyshire DE78AB UK

5. Centre for Photonics and Photonic Materials and Centre for Nanoscience and Nanotechnology Department of Physics University of Bath Claverton Down Bath BA27AY UK

Abstract

AbstractThe introduction of porosity into ferroelectric ceramics can decrease the effective permittivity, thereby enhancing the open circuit voltage and electrical energy generated by the direct piezoelectric effect. However, the decrease in the longitudinal piezoelectric coefficient (d33) with increasing porosity levels currently limiting the range of pore fractions that can be employed. By introducing aligned lamellar pores into (Ba0.85Ca0.15)(Zr0.1Ti0.9)O3, this paper demonstrates an unusual 22–41% enhancement in the d33 compared to its dense counterpart. This unique combination of high d33 and a low permittivity leads to a significantly improved voltage coefficient (g33), energy harvesting figure of merit (FoM33) and electromechanical coupling coefficient (). The underlying mechanism for the improved properties is demonstrated to be a synergy between the low defect concentration and high internal polarizing field within the porous lamellar structure. This work provides insights into the design of porous ferroelectrics for applications related to sensors, energy harvesters, and actuators.

Funder

Engineering and Physical Sciences Research Council

UK Research and Innovation

Natural Environment Research Council

Publisher

Wiley

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