Comparison of electric field‐dependent property in BaTiO3‐based piezoceramics between single and coexisting phases

Author:

Zhao Chunlin1ORCID,He Tao1,Lin Cong1ORCID,Wu Xiao1ORCID,Lin Tengfei1,Gao Min1ORCID,Tao Hong2ORCID,Wu Wenjuan3ORCID,Wu Bo2ORCID

Affiliation:

1. College of Materials Science and Engineering Fuzhou University Fuzhou China

2. Physics Department Southwest Minzu University Chengdu China

3. Sichuan Province Key Laboratory of Information Materials and Devices Application Chengdu University of Information Technology Chengdu China

Abstract

AbstractThe evolution of electrical properties with an electric field (E) was compared between single‐phase BT ceramic and phase‐coexistence BT‐based (BTS–0.15BCT) ceramic. The dielectric, ferroelectric, piezoelectric, and strain properties are all found to be electric field‐dependent, especially for BTS–0.15BCT ceramic with small domains and easy polarization rotation induced by phase coexistence. High ferroelectric and strain properties are obtained in this ceramic because sufficient domain switching can easily be achieved. The high dielectric constant can be further elevated after poling this ceramic due to the E‐induced multiphase transitions. Dynamic piezoelectric measurement reveals that the dynamic piezoelectricity can reach to ∼740 pC/N, which is much higher than the static value (∼620 pC/N) of poled BTS–0.15BCT ceramic. However, the converse piezoelectric coefficient will decrease at high E, because of the quick decrease in dynamic dielectric response caused by clamped polarization at high E. All the results demonstrate that phase‐coexistence BT‐based ceramic shows electric field‐related properties due to the soft structure, whereas it cannot be observed in BT ceramic with stable phase structure and large domains. This work reveals the evolution difference and structure origin of electrical properties in BT‐based piezoceramics with different phase structures.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Fujian Province

Sichuan Province Science and Technology Support Program

Publisher

Wiley

Subject

Materials Chemistry,Ceramics and Composites

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