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Novel Electromechanical Phenomena at the Nanoscale: Phenomenological Theory and Atomistic Modeling

机译:纳米尺度的新型机电现象:现象学理论与原子建模

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摘要

In the past two decades, the fact that "small is different" has been established for a wide variety of phenomena, including electrical, optical, magnetic, and mechanical behavior of materials. However, one largely untapped but potentially very important area of nanoscience involves the interplay of electricity and mechanics at the nanoscale. In this article, predicated on both phenomenological approaches and atomistic calculations, we summarize the state-of-the-art in understanding electromechanical coupling at the nanoscale. First, we address flexoelectricity-the coupling of strain gradient to polarization. Flexoelectricity exists in both piezoelectric and nonpiezoelectric dielectrics. As a high-order spatial-dispersion effect, the flexoelectricity becomes more and more important with the reduction of the spatial scale of the problem. Exploitation of this phenomenon and the associated nanoscale size effects can lead to tantalizing applications, such as "piezoelectric nanocomposites without using piezoelectric materials." The second issue concerns electromechanical effects at the dielectric/metal interface. An interface in solids typically exhibits a lower symmetry compared to that of the associated adhering materials. This symmetry reduction can drastically affect the electromechanical and dielectric behavior of the material at the nanoscale.
机译:在过去的二十年中,已经针对各种各样的现象确立了“小有不同”的事实,包括材料的电,光,磁和机械行为。但是,纳米科学的一个尚未开发但可能非常重要的领域涉及纳米级的电和力学的相互作用。在本文中,基于现象学方法和原子计算,我们总结了了解纳米级机电耦合的最新技术。首先,我们解决了柔电问题-应变梯度与极化的耦合。压电和非压电电介质中都存在柔电。作为高阶空间色散效应,随着问题空间尺度的减小,柔性电变得越来越重要。利用这种现象和相关的纳米级尺寸效应可导致诱人的应用,例如“不使用压电材料的压电纳米复合材料”。第二个问题涉及电介质/金属界面处的机电效应。与相关的粘附材料相比,固体中的界面通常显示出较低的对称性。这种对称性降低会严重影响纳米级材料的机电和介电行为。

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