Impedance spectroscopy and electrical conductivity of 0.7Bi(1−x)NdxFeO3–0.3BaTiO3 ferroelectric ceramics

Author:

Tang Hui1ORCID,Peng Xiao-Cao2,Ma Jiu-Ming3,Yang Zhi-Peng2,Niu Xiang2,Wen Jun-Xia2,Tang Xin-Gui4,Lu Sheng-Guo2

Affiliation:

1. School of Mechanical and Electrical Engineering, Liuzhou Vocational & Technical College, Liuzhou 545006, P. R. China

2. Guangdong Provincial Research Center on Smart Materials and Energy Conversion Devices, Guangdong Provincial Key Laboratory of Functional Soft Condensed Matter, School of Materials and Energy, Guangdong University of Technology, Guangzhou 510006, P. R. China

3. School of Automotive Technology, Liuzhou Railway Vocational Technical College, Liuzhou 545006, P. R. China

4. School of Physics & Optoelectric Engineering, Guangdong University of Technology, Guangzhou 510006, P. R. China

Abstract

0.7Bi[Formula: see text]NdxFeO3–0.3BaTiO3 (BNFO–BTO, [Formula: see text], 0.010, 0.020 and 0.050) ceramics were fabricated using the high-temperature solid-state reaction method. The X-ray diffraction (XRD) patterns revealed that the primary phase in these ceramics was pseudocubic. The Scanning Electron Microscopy (SEM) micrographs exhibited dense microstructures throughout all BNFO–BTO ceramics. Furthermore, the temperature dependence of dielectric behaviors and ferroelectric hysteresis loop shapes suggested the occurrence of a relaxor ferroelectric-type phase transition in BNFO–BTO ceramics. Additionally, the frequency dispersion characteristics and remnant polarization were enhanced with increasing substitution of Bi[Formula: see text] by Nd[Formula: see text]. Conducted impedance analysis on 0.7Bi[Formula: see text]NdxFeO3–0.3BaTiO3 ceramics and two dielectric responses of the grain at high frequency and grain boundary at low frequency were illustrated, respectively. The combination of imaginary impedance ([Formula: see text] and imaginary modulus ([Formula: see text] versus log[Formula: see text]f plots revealed that the charge carriers’ motion was not entirely long-range, short-range migration also exists. Through calculations based on Curie–Weiss Law, the relaxation activation energy ([Formula: see text] and conductance activation energy ([Formula: see text] were investigated, confirming that doping Nd[Formula: see text] effectively mitigates the concentration of oxygen vacancies (OVs) and prevents the formation of oxygen vacancies clusters, ultimately suppressing conductivity in BNFO–BTO ceramics.

Funder

Natural Science Foundation of China

Guangdong Provincial Natural Science Foundation

NSFC-Guangdong Joint Fund

Dongguan City Frontier Research Project

Advanced Energy Science and Technology Guangdong Provincial Laboratory Foshan Branch-Foshan Xianhu Laboratory Open Fund-Key Project

Natural Science Foundation of Guangxi Zhuang Autonomous Region

Middle-aged and Young Teachers' Basic Ability Promotion Project of Guangxi

Liuzhou City Science and Technology Plan Project

Publisher

World Scientific Pub Co Pte Ltd

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