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碱缺乏驱动的具有巨大机电响应的带电异相边界

Alkali-deficiency driven charged out-of-phase boundaries for giant electromechanical response.

作者信息

Wu Haijun, Ning Shoucong, Waqar Moaz, Liu Huajun, Zhang Yang, Wu Hong-Hui, Li Ning, Wu Yuan, Yao Kui, Lookman Turab, Ding Xiangdong, Sun Jun, Wang John, Pennycook Stephen J

机构信息

State Key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, Xi'an, China.

Department of Materials Science and Engineering, National University of Singapore, Singapore, Singapore.

出版信息

Nat Commun. 2021 May 14;12(1):2841. doi: 10.1038/s41467-021-23107-x.

Abstract

Traditional strategies for improving piezoelectric properties have focused on phase boundary engineering through complex chemical alloying and phase control. Although they have been successfully employed in bulk materials, they have not been effective in thin films due to the severe deterioration in epitaxy, which is critical to film properties. Contending with the opposing effects of alloying and epitaxy in thin films has been a long-standing issue. Herein we demonstrate a new strategy in alkali niobate epitaxial films, utilizing alkali vacancies without alloying to form nanopillars enclosed with out-of-phase boundaries that can give rise to a giant electromechanical response. Both atomically resolved polarization mapping and phase field simulations show that the boundaries are strained and charged, manifesting as head-head and tail-tail polarization bound charges. Such charged boundaries produce a giant local depolarization field, which facilitates a steady polarization rotation between the matrix and nanopillars. The local elastic strain and charge manipulation at out-of-phase boundaries, demonstrated here, can be used as an effective pathway to obtain large electromechanical response with good temperature stability in similar perovskite oxides.

摘要

传统的改善压电性能的策略主要集中在通过复杂的化学合金化和相控制来进行相界工程。尽管这些策略已成功应用于块状材料,但由于外延严重退化,这对薄膜性能至关重要,因此它们在薄膜中并不有效。应对薄膜中合金化和外延的相反效应一直是一个长期存在的问题。在此,我们展示了一种在碱铌酸盐外延薄膜中的新策略,利用无合金化的碱空位形成由异相界包围的纳米柱,这可以产生巨大的机电响应。原子分辨极化映射和相场模拟均表明,这些边界存在应变和电荷,表现为头对头和尾对尾的极化束缚电荷。这种带电边界产生巨大的局部去极化场,这有助于在基体和纳米柱之间实现稳定的极化旋转。本文展示的在异相界处的局部弹性应变和电荷操控,可以作为在类似钙钛矿氧化物中获得具有良好温度稳定性的大机电响应的有效途径。

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