Effect of grain size on phase transitions and dielectric properties in AgNbO3 ceramics

Z Zhongna Yan H Haojie Peng (Key Laboratory of Renewable Energy Electric-Technology of Hunan Province, School of Energy and Power Engineering, Changsha University of Science and Technology 1 , Changsha 410114,) Y Yuao Ding (Key Laboratory of Renewable Energy Electric-Technology of Hunan Province, School of Energy and Power Engineering, Changsha University of Science and Technology 1 , Changsha 410114,) H Haiyan Chen C Chuanchang Li (Key Laboratory of Renewable Energy Electric-Technology of Hunan Province, School of Energy and Power Engineering, Changsha University of Science and Technology 1 , Changsha 410114,) H Hang Luo (College of Materials Science and Engineering) H He Qi D Dou Zhang I Isaac Abrahams (Department of Chemistry, Queen Mary University of London, Mile End Road, London E1 4NS, U.K.) H Haixue Yan (School of Engineering and Materials Science, Queen Mary University of London, Mile End Road, London E1 4NS, U.K.)

Abstract

In ferroelectric ceramics, the grain size can influence both structure and properties. In this work, three AgNbO3 ceramics, with average grain sizes ranging from 230 nm to 2.7 μm, were fabricated. Rietveld refinement was performed for their structures using the polar space group Pb21m, consistent with their ferrielectric nature, as evidenced by the E1 peaks observed in current–electric field (I–E) loops. As the grain size increases, the ferrielectric distortion b/a increases, while the cell volume V decreases. All transition temperatures, between the M1-M2a, M2a-M3, and M3-O phases, shift to lower values, and the permittivity peaks associated with these transitions become broader with decreasing grain size. This can be attributed to small and dynamic polar structures with a wide size distribution in fine-grained ceramics, and relatively large sized polar structures with clearer domain walls in coarse-grained ceramics, as supported by transmission electron microscopy results. Under high electric field, double hysteresis loops indicative of antiferroelectric behavior were observed. With decreasing grain size, the field-induced polarization decreases, and both forward and backward reversal fields (EF and EB) increase, which can be attributed to the increased restriction from grain boundaries.

Article Details

Volume / Issue Vol. 129, Issue 1
Published July 06, 2026
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (10)

Z

Zhongna Yan

H

Haojie Peng

Key Laboratory of Renewable Energy Electric-Technology of Hunan Province, School of Energy and Power Engineering, Changsha University of Science and Technology 1 , Changsha 410114,

Y

Yuao Ding

Key Laboratory of Renewable Energy Electric-Technology of Hunan Province, School of Energy and Power Engineering, Changsha University of Science and Technology 1 , Changsha 410114,

H

Haiyan Chen

C

Chuanchang Li

Key Laboratory of Renewable Energy Electric-Technology of Hunan Province, School of Energy and Power Engineering, Changsha University of Science and Technology 1 , Changsha 410114,

H

Hang Luo

College of Materials Science and Engineering

H

He Qi

D

Dou Zhang

I

Isaac Abrahams

Department of Chemistry, Queen Mary University of London, Mile End Road, London E1 4NS, U.K.

H

Haixue Yan

School of Engineering and Materials Science, Queen Mary University of London, Mile End Road, London E1 4NS, U.K.