High‐resistance X9R‐type colossal dielectric ceramics achieved by reducing grain size in Y‐modified SrTiO3

Author:

Li Chenlin1,Huang Chu1,Zhu Mingliang1,Wang Siyuan1,Xu Anqi1,Liu Xiao2,Chen Xue3,Yan Shiguang4,Peng Biaolin5ORCID,Deng Jianming6,Lei Xiuyun1ORCID,Shen Yufang1,Liu Laijun1ORCID

Affiliation:

1. Guangxi Key Lab of Optical and Electronic Functional Materials and Devices College of Materials Science and Engineering Guilin University of Technology Guilin China

2. School of Materials Science and Engineering Xi'an University of Science and Technology Xi'an China

3. Guangxi Key Laboratory of Information Materials Guilin University of Electronic Technology Guilin China

4. Key Laboratory of Inorganic Functional Materials and Devices Shanghai Institute of Ceramics Chinese Academy of Sciences Shanghai China

5. School of Advanced Materials and Nanotechnology Xidian University Xi'an Xi'an China

6. Guangdong Provincial Key Laboratory of Electronic Functional Materials and Devices Huizhou University Huizhou Guangdong China

Abstract

AbstractElectronic components are widely used in the field of electronic information. It is more and more important to prepare miniaturized and better performance electronic components. In this work, Sr1−3x/2YxTiO3 (x = 0.005, 0.0075, 0.01, 0.0125) ceramics were prepared by the traditional solid‐phase synthesis method. N2 annealing induces the appearance of lattice defects and free carriers and defect dipoles (). The defect dipoles easily induce the electron‐pinning defect dipole effect and inhibit the movement of free carriers, which can enhance the dielectric constant and reduce the dielectric loss simultaneously. The electrons cannot pass through the insulating grain boundary and accumulate in the conductive grains under an external electric field, forming the internal barrier layer capacitance (IBLC). The ceramic was further refined by high‐energy ball milling to improve the temperature and frequency stability of the ceramic. Under the combined action of rare‐earth doping, atmosphere annealing, and high‐energy ball milling, a dielectric ceramic material with colossal permittivity, low loss, high resistivity, frequency, and temperature stability that meets the ELA X9R capacitor standard was prepared.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Guangdong Province

Publisher

Wiley

Subject

Materials Chemistry,Ceramics and Composites

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