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基于(K,Na)NbO₃的陶瓷中不可逆畴结构转变引起的机电行为反转

Inverted electro-mechanical behaviour induced by the irreversible domain configuration transformation in (K,Na)NbO3-based ceramics.

作者信息

Huan Yu, Wang Xiaohui, Koruza Jurij, Wang Ke, Webber Kyle G, Hao Yanan, Li Longtu

机构信息

State Key Laboratory of New Ceramics and Fine Processing, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, China.

Institute of Materials Science, Technische Universität Darmstadt, 64287 Darmstadt, Germany.

出版信息

Sci Rep. 2016 Feb 26;6:22053. doi: 10.1038/srep22053.

Abstract

Miniaturization of domains to the nanometer scale has been previously reported in many piezoelectrics with two-phase coexistence. Despite the observation of nanoscale domain configuration near the polymorphic phase transition (PPT) regionin virgin (K0.5Na0.5)NbO3 (KNN) based ceramics, it remains unclear how this domain state responds to external loads and influences the macroscopic electro-mechanical properties. To this end, the electric-field-induced and stress-induced strain curves of KNN-based ceramics over a wide compositional range across PPT were characterized. It was found that the coercive field of the virgin samples was highest in PPT region, which was related to the inhibited domain wall motion due to the presence of nanodomains. However, the coercive field was found to be the lowest in the PPT region after electrical poling. This was related to the irreversible transformation of the nanodomains into micron-sized domains during the poling process. With the similar micron-sized domain configuration for all poled ceramics, the domains in the PPT region move more easily due to the additional polarization vectors. The results demonstrate that the poling process can give rise to the irreversible domain configuration transformation and then account for the inverted macroscopic piezoelectricity in the PPT region of KNN-based ceramics.

摘要

先前已有报道,在许多具有两相共存的压电材料中,畴已缩小至纳米尺度。尽管在原始的基于(K0.5Na0.5)NbO3(KNN)的陶瓷中,在多晶相转变(PPT)区域附近观察到了纳米级畴结构,但尚不清楚这种畴状态如何响应外部载荷并影响宏观机电性能。为此,对跨越PPT的宽成分范围内的基于KNN的陶瓷的电场诱导应变曲线和应力诱导应变曲线进行了表征。结果发现,原始样品的矫顽场在PPT区域最高,这与由于纳米畴的存在而导致的畴壁运动受到抑制有关。然而,在电场极化后,发现矫顽场在PPT区域最低。这与极化过程中纳米畴向微米尺寸畴的不可逆转变有关。由于所有极化陶瓷都具有相似的微米尺寸畴结构,PPT区域中的畴由于额外的极化矢量而更容易移动。结果表明极化过程会导致不可逆的畴结构转变,进而解释了基于KNN的陶瓷在PPT区域中宏观压电性的反转。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/36a1/4768104/0a59d01befc2/srep22053-f1.jpg

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