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Flexoelectric nano-generator: Materials, structures and devices

机译:柔电纳米发电机:材料,结构和装置

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摘要

Flexoelectricity, as a fundamental electromechanical coupling effect between electric polarization and mechanical strain gradient, or vice versa between electric polarization gradient and mechanical gradient, exists in various categories of materials including solid materials, liquid crystals, polymers, and biomembranes. Dependence of electric or mechanical gradients on geometry requires the adoption of specific structures for different flexoelectric mode applications. Scaling effect associated with gradient suggests that flexoelectric effect can be more significant in microano systems, comparable to or even exceed piezoelectricity. In this review, flexoelectricity in those studied materials will be summarized and compared. Applications in sensors, actuators, capability of tuning the ferroelectric thin film properties, and roles in bio-system mechanosensitivity and mechanotranduction of flexoelectricity will be introduced respectively. Especially, flexoelectricity nano-generator enlightens a new technique for energy harvesting. Comparison with piezoelectric nano-generator suggests that flexoelectric counterpart can yield enhanced performance with specific nanostructures and provide a wider materials choice.
机译:柔性电是极化和机械应变梯度之间的基本机电耦合效应,反之亦然,在极化和机械应变梯度之间反之亦然,它存在于各种材料中,包括固体材料,液晶,聚合物和生物膜。电或机械梯度对几何形状的依赖要求针对不同的柔电模式应用采用特定的结构。与梯度相关的缩放效应表明,在微/纳米系统中,柔电效应可能更显着,与压电性相当甚至更高。在这篇综述中,将对那些研究材料中的挠曲电进行总结和比较。将分别介绍在传感器,致动器,调节铁电薄膜特性的能力以及在生物系统机械灵敏性和柔性机械化中的作用等方面的应用。特别是,柔性电纳米发电机启发了一种新的能量收集技术。与压电纳米发电机的比较表明,挠性电对应物可以通过特定的纳米结构提高性能,并提供更广泛的材料选择。

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