Investigating the temperature-dependent electro-optic behaviors in La-doped PMN-PT transparent ceramics

G Guoqing Shi Y Yaqi Wang (College of Energy Materials and Chemistry) M Menghang Sang (College of Physics, University-Industry Joint Center for Ocean Observation and Broadband Communication, National Demonstration Center for Experimental Applied Physics Education, Qingdao University 1 , Qingdao 266071,) M Miao Yuan M Mengjun Wu J Jian Zhu (General Hospital of Central Theater Command of People’s Liberation Army, Medical College of Wuhan University of Science and Technology, Wuhan, China) S Shuai Liu (College of Materials Science and Engineering) Z Zhitong Liu X Xingui Xie (College of Physics, University-Industry Joint Center for Ocean Observation and Broadband Communication, National Demonstration Center for Experimental Applied Physics Education, Qingdao University 1 , Qingdao 266071,) S Sirui Cheng (College of Physics, University-Industry Joint Center for Ocean Observation and Broadband Communication, National Demonstration Center for Experimental Applied Physics Education, Qingdao University 1 , Qingdao 266071,) Y Yalin Qin Z Zheng Wen J Jianyi Liu (Hefei National Research Center for Physical Sciences at the Microscale and New Cornerstone Science Laboratory) Y Yongcheng Zhang

Abstract

Understanding the temperature-dependent electro-optic behaviors in (1 − x)[Pb(Mg1/3Nb2/3)O3]-x[PbTiO3] [(1 − x)PMN-xPT] is central to its device applications. In this work, 0.5 mol. % La-(1 − x)PMN-xPT transparent ceramics with different solid solution ratios (i.e., x = 0.10, 0.15, 0.20, 0.25) were fabricated to study the temperature-dependent electro-optic behaviors. Two distinct temperature dependencies are revealed: for 0.85PMN-0.15PT and 0.90PMN-0.10PT, the measured electro-optic coefficient decreases with increasing temperature, while for 0.75PMN-0.25PT and 0.80PMN-0.20PT, the electro-optic coefficient first increases and then decreases rapidly with the increase in temperature. Based on the temperature-dependent dielectric, ferroelectricity, x-ray diffraction, and piezoresponse domain image analysis, the ferroelectric–ferroelectric phase transition is suggested to play a dominant role, with the ferroelectric state to relaxor state transition providing an auxiliary enhancement. This study provides valuable insights into understanding temperature-dependent electro-optic behaviors and should be instructive for the design and optimization of advanced electro-optic devices.

Article Details

Volume / Issue Vol. 126, Issue 24
Published June 16, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (14)

G

Guoqing Shi

Y

Yaqi Wang

College of Energy Materials and Chemistry

M

Menghang Sang

College of Physics, University-Industry Joint Center for Ocean Observation and Broadband Communication, National Demonstration Center for Experimental Applied Physics Education, Qingdao University 1 , Qingdao 266071,

M

Miao Yuan

M

Mengjun Wu

J

Jian Zhu

General Hospital of Central Theater Command of People’s Liberation Army, Medical College of Wuhan University of Science and Technology, Wuhan, China

S

Shuai Liu

College of Materials Science and Engineering

Z

Zhitong Liu

X

Xingui Xie

College of Physics, University-Industry Joint Center for Ocean Observation and Broadband Communication, National Demonstration Center for Experimental Applied Physics Education, Qingdao University 1 , Qingdao 266071,

S

Sirui Cheng

College of Physics, University-Industry Joint Center for Ocean Observation and Broadband Communication, National Demonstration Center for Experimental Applied Physics Education, Qingdao University 1 , Qingdao 266071,

Y

Yalin Qin

Z

Zheng Wen

J

Jianyi Liu

Hefei National Research Center for Physical Sciences at the Microscale and New Cornerstone Science Laboratory

Y

Yongcheng Zhang