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揭示核壳效应在铋基弛豫体/铁电陶瓷复合材料频率相关特性上的作用

Revealing of Core Shell Effect on Frequency-Dependent Properties of Bi-based Relaxor/Ferroelectric Ceramic Composites.

作者信息

Saleem Mohsin, Hwan Lim Dong, Kim In-Sung, Kim Min-Soo, Maqbool Adnan, Nisar Umair, Pervez Syed Atif, Farooq Umer, Farooq Muhammad Umer, Khalil Hafiz Muhammad Waseem, Jeong Soon-Jong

机构信息

Battery Research Center, Korea Electro-technology Research Institute (KERI), Changwon, 641-120, Republic of Korea.

School of Chemical and Material Engineering, National University of Science and Technology, Islamabad, Pakistan.

出版信息

Sci Rep. 2018 Sep 20;8(1):14146. doi: 10.1038/s41598-018-32133-7.

Abstract

In this study, electromechanical characteristics of (1-x) BiNaTiO-xSrTiO (ST26, x = 0.26)/(1-y) BiNaTiO-ySrTiO (ST10, y = 0.1) (matrix/seed) composites were studied. The ST26 (high relaxor phase) and ST10 (a relaxor ferroelectric (RF), high ferroelectric phase) composite with large (r-ST26-ST10) and small (t-ST26-ST10) grains exhibited frequency-related dielectric properties and large strain response at a low triggering electric field (an incipient piezoelectricity). It is ascribed to a matrix-seed effect originating from the inhomogeneous composition due to the presence of two phases. The r-ST26-ST10 composite sintered at 4 h, prominent material, showed a high normalized dynamic strain (d*) of ~700 pm/V (large grains) with stable frequency dependence properties at a low field of 40 kV/cm. The properties of the r-ST26-ST10 composite exhibit less decay with frequency-related polarization and strain compared to those of t-ST26-ST10 composite. The increase in soaking time promotes the diffusion and homogenization of the microstructure in composites, leading to changes in the core-shell structure in the solid solution. The polarization and strain of the ST26-ST10 composites with the frequency are linked to the stability of the internal random fields created by non-ergodic relaxor phase of seed and the amount of phase change in the ergodic relaxor matrix.

摘要

在本研究中,对(1-x)BiNaTiO-xSrTiO(ST26,x = 0.26)/(1-y)BiNaTiO-ySrTiO(ST10,y = 0.1)(基体/籽晶)复合材料的机电特性进行了研究。具有大晶粒(r-ST26-ST10)和小晶粒(t-ST26-ST10)的ST26(高弛豫相)和ST10(弛豫铁电体(RF),高铁电相)复合材料表现出与频率相关的介电特性以及在低触发电场下的大应变响应(初现压电性)。这归因于由于两相存在导致的成分不均匀所产生的基体-籽晶效应。在4小时烧结的r-ST26-ST10复合材料是突出的材料,在40 kV/cm的低场下显示出约700 pm/V的高归一化动态应变(d*)(大晶粒)以及稳定的频率依赖性特性。与t-ST26-ST10复合材料相比,r-ST26-ST10复合材料的特性在与频率相关的极化和应变方面衰减较小。浸泡时间的增加促进了复合材料中微观结构的扩散和均匀化,导致固溶体中核壳结构的变化。ST26-ST10复合材料的极化和应变与频率的关系与籽晶的非遍历弛豫相产生的内部随机场的稳定性以及遍历弛豫基体中的相变数量有关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/94c5/6147923/7f54e4da7390/41598_2018_32133_Fig1_HTML.jpg

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