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Polarization rotation boosts strong piezoelectric response in the lead-free perovskite ferroelectric K_(0.5)Na_(0.5)NbO_3

机译:极化旋转在无铅钙钛矿铁电K_(0.5)NA_(0.5)NBO_3中促进强大的压电反应

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摘要

Polarization rotation is considered one of the most important intrinsic origins of high piezoelectricity in perovskite ferroelectrics. Such rotation strongly increases the lateral polarization, thus giving rise to the ultrahigh-shear piezoelectric coefficient. The evolution of polarization vector as a function of shear strain in a lead-free perovskite ferroelectric, K_(0.5)Na_(0.5)NbO_3 (KNN), is demonstrated using the first-principle calculations. The polarization rotation is found to correlate directly with the shear piezoelectric constant. The larger the rotation angle, the higher the shear piezoelectric constant. The atomic insight reveals the polarization rotation mainly relies on the reorientation of Nb and O atoms along low potential-energy surfaces. We propose the polarization vector is more likely to rotate along the [111]_(PC)→[101]_(PC)→[001]_(PC) path instead of direct [111]_(PC)→[001]_(PC) transition in high-performance lead-free piezoelectric materials with broad thermotropic phase boundaries; thus, the critical role of orthorhombic structure should be emphasized. We hope that this work will inspire future experimental studies for further developing lead-free piezoelectric materials.
机译:偏振旋转被认为是Perovskite铁电解中的高压电性最重要的内在起源之一。这种旋转强烈地增加了横向偏振,从而产生了超高剪切压电系数。使用第一原理计算来证明偏振载体作为剪切菌,K_(0.5)NA_(0.5)NBO_3(KNN)的剪切应变的函数的演变。发现偏振旋转直接与剪切压电常数相关联。旋转角度越大,剪切压电常数越高。原子洞察揭示偏振旋转主要依赖于沿低电位 - 能量表面的Nb和O原子的重新定向。我们提出偏振矢量更可能沿[111] _(PC)→[101]→[101]→[001] _(PC)路径而不是直接[111] _(PC)→[001] _(PC)在高性能无铅压电材料中过渡,具有宽热相位边界;因此,应强调正交结构的关键作用。我们希望这项工作能够激发未来的实验研究,以进一步发展无铅压电材料。

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  • 来源
    《Physical review.B.Condensed matter and materials physics》 |2021年第1期|014104.1-014104.5|共5页
  • 作者单位

    College of Materials Science and Engineering Sichuan University Chengdu 610065 China;

    College of Materials Science and Engineering Sichuan University Chengdu 610065 China;

    Department of Physics University of Texas at Arlington Texas 76019 USA;

    Department of Physics University of Texas at Arlington Texas 76019 USA;

    College of Materials Science and Engineering Sichuan University Chengdu 610065 China;

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