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Vertically aligned P(VDF-TrFE) core-shell structures on flexible pillar arrays

机译:柔性柱阵列上垂直对齐的P(VDF-TrFE)核-壳结构

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摘要

PVDF and P(VDF-TrFE) nano- and micro- structures have been widely used due to their potential applications in several fields, including sensors, actuators, vital sign transducers, and energy harvesters. In this study, we developed vertically aligned P(VDF-TrFE) core-shell structures using high modulus polyurethane acrylate (PUA) pillars as the support structure to maintain the structural integrity. In addition, we were able to improve the piezoelectric effect by 1.85 times from 40 ± 2 to 74 ± 2 pm/V when compared to the thin film counterpart, which contributes to the more efficient current generation under a given stress, by making an effective use of the P(VDF-TrFE) thin top layer as well as the side walls. We attribute the enhancement of piezoelectric effects to the contributions from the shell component and the strain confinement effect, which was supported by our modeling results. We envision that these organic-based P(VDF-TrFE) core-shell structures will be used widely as 3D sensors and power generators because they are optimized for current generations by utilizing all surface areas, including the side walls of core-shell structures.
机译:PVDF和P(VDF-TrFE)纳米和微米结构因其在多个领域的潜在应用而被广泛使用,包括传感器,致动器,生命体征换能器和能量收集器。在这项研究中,我们开发了使用高模量聚氨酯丙烯酸酯(PUA)支柱作为支撑结构来保持结构完整性的垂直对齐的P(VDF-TrFE)核-壳结构。此外,与薄膜晶体管相比,我们能够将压电效应从40±2提升到74±2μm/ V,提高了1.85倍,有助于在给定应力下更有效地产生电流。使用P(VDF-TrFE)薄顶层以及侧壁。我们将压电效应的增强归因于壳组件的贡献和应变约束效应,这得到了我们的建模结果的支持。我们设想这些基于有机物的P(VDF-TrFE)核-壳结构将被广泛用作3D传感器和发电机,因为它们通过利用包括核-壳结构侧壁在内的所有表面积进行了当代优化。

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