论文标题

3D互连多孔聚合物的超高柔性效应:建模和验证

Ultrahigh flexoelectric effect of 3D interconnected porous polymers: modelling and verification

论文作者

Zhang, Mingyuan, Yan, Dongze, Wang, Jianxiang, Shao, Li-Hua

论文摘要

橡胶,塑料,陶瓷甚至半导体等非导电材料具有柔韧性的特性,这意味着它们在弯曲和扭曲时可以发电。但是,不规则的形状或特殊的负载一直是实现挠性性的必要条件,并且固体的柔韧性的重量和可变形性特异性比率受到限制。在这项工作中,我们开发了三维相互连接的多孔材料的挠性电特性的理论模型。与固体材料相比,由于其复杂的微观结构,多孔材料在任意加载形式下表现出柔性电离,并且特定特定的特异性挠性输出远高于固体。然后,我们通过测量聚二甲基硅氧烷(PDMS)和多孔聚偏二氟(PVDF)的挠性反应来验证该模型。具有3D微米尺度互连结构的多孔PDMS比固体截短的金字塔PDMs的重量和可变形性特异性输出高两个数量级。发现挠性信号与施加的应变,微结构大小和频率成正比。最后,我们将理论应用于更实用的弯曲传感器,并证明其稳定的功能和准确的响应。我们的模型可以应用于其他多孔材料,结果突出了多孔微型结构材料的新潜力,并在机械感应,驱动,能量收集和仿生材料的领域具有显着的挠性效应。

Non-conductive materials like rubbers, plastics, ceramics, and even semiconductors have the property of flexoelectricity, which means that they can generate electricity when bent and twisted. However, an irregular shape or a peculiar load has been the necessary condition to realize flexoelectricity, and the weight and deformability specific ratios of flexoelectricity of solids are limited. In this work, we develop a theoretical model of flexoelectricity of three-dimensional interconnected porous materials. Compared to the solid materials, porous materials can exhibit flexoelectricity under arbitrary loading forms due to their complex microstructures, and the weight and deformability specific flexoelectric output is much higher than that of the solids. Then, we verify the model by measuring the flexoelectric response of polydimethylsiloxane (PDMS) and porous polyvinylidene fluoride (PVDF). The porous PDMS with 3D micron-scale interconnected structures exhibits two orders of magnitude higher weight and deformability specific flexoelectric output than that of the solid truncated pyramid PDMS. The flexoelectric signal is found to be linearly proportional to the applied strain, the microstructural size and the frequency. Finally, we apply the theory to a more practical bending sensor, and demonstrate its stable functioning and accurate response. Our model can be applied to other porous materials, and the results highlight the new potential of porous micro-structured materials with a significant flexoelectric effect in the fields of mechanical sensing, actuating, energy harvesting, and biomimetics as light-weight materials.

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