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一维 ZnO 纳米结构的机电性能:纳压电电子学构建块、表面和尺寸效应。

Electromechanical properties of 1D ZnO nanostructures: nanopiezotronics building blocks, surface and size-scale effects.

机构信息

Department of Aerospace Engineering, Iowa State University, Ames, Iowa 50011, USA.

出版信息

Phys Chem Chem Phys. 2014 Mar 14;16(10):4522-7. doi: 10.1039/c3cp54456g.

Abstract

One-dimensional (1D) zinc oxide nanostructures are the main components of nanogenerators and central to the emerging field of nanopiezotronics. Understanding the underlying physics and quantifying the electromechanical properties of these structures, the topic of this research study, play a major role in designing next-generation nanoelectromechanical devices. Here, atomistic simulations are utilized to study surface and size-scale effects on the electromechanical response of 1D ZnO nanostructures. It is shown that the mechanical and piezoelectric properties of these structures are controlled by their size, cross-sectional geometry, and loading configuration. The study reveals enhancement of the piezoelectric and elastic modulus of ZnO nanowires (NW) with diameter d > 1 nm, followed by a sudden drop for d < 1 nm due to transformation of NWs to nanotubes (NTs). Degradation of mechanical and piezoelectric properties of ZnO nanobelts (NBs) followed by an enhancement in piezoelectric properties occurs when their lower dimension is reduced to <1 nm. The latter enhancement can be explained in the context of surface reconfiguration and formation of hexagon-tetragon (HT) pairs at the intersection of (21[combining macron]1[combining macron]0) and (011[combining macron]0) planes in NBs. Transition from a surface-reconstructed dominant to a surface-relaxed dominant region is demonstrated for lateral dimensions <1 nm. New phase-transformation (PT) kinetics from piezoelectric wurtzite to nonpiezoelectric body-centered tetragonal (WZ → BCT) and graphite-like phase (WZ → HX) structures occurs in ZnO NWs loaded up to large strains of ∼10%.

摘要

一维(1D)氧化锌纳米结构是纳米发电机的主要组成部分,也是纳米压电电子学这一新兴领域的核心。理解这些结构的基础物理并量化其机电性能,是设计下一代纳米机电设备的关键。在本研究中,我们利用原子模拟来研究表面和尺寸效应对一维氧化锌纳米结构机电响应的影响。结果表明,这些结构的机械和压电性能受其尺寸、横截面几何形状和加载配置的控制。研究表明,直径 d > 1nm 的 ZnO 纳米线(NW)的压电和弹性模量增强,随后 d < 1nm 时由于 NW 转变为纳米管(NTs)而突然下降。当 ZnO 纳米带(NB)的下维度减小到 <1nm 时,其机械和压电性能会先下降,然后压电性能增强。后者的增强可以用表面重构的概念和在(21[combining macron]1[combining macron]0)和(011[combining macron]0)晶面交界处形成六方-四方(HT)对来解释。当侧向尺寸 <1nm 时,从表面重构为主的区域转变为表面弛豫为主的区域。在加载到高达约 10%的大应变时,在 ZnO NWs 中会发生从压电纤锌矿到非压电体心四方(WZ → BCT)和石墨状相(WZ → HX)结构的新的相变(PT)动力学。

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