基于多孔压电PVDF薄膜的柔性纳米发电机石墨烯-金电极

M. Fortunato, A. Rinaldi, A. Tamburrano, G. De Bellis, T. Dikonimos, N. Lisi, M. S. Sarto
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引用次数: 4

摘要

在这项工作中,我们开发了石墨烯-金电极(GGEs),用于由多孔压电PVDF薄膜制成的柔性纳米发电机。双层电极结构的设想是为了避免在薄膜表面直接溅射金而产生的上下电极之间的短路。金溅射在化学气相沉积(CVD)生长的石墨烯薄膜上,随后转移到PVDF薄膜上。为了优化电极表面导电性并保证高柔韧性,我们分析了随Au厚度增加而制备的gge的形貌和电学性能。利用压电响应力显微镜(PFM)研究了PVDF薄膜和gge覆盖PVDF薄膜的压电系数$\ mathm {d}_{33}$。我们观察到,得到的$\ mathm {d}_{33}$的值在有gge和没有gge的情况下是一致的。这一结果可以直接将纳米级压电性能与宏观级压电性能联系起来。此外,使用商用微型激振器测量了由PVDF薄膜上下与双层gge接触制成的柔性纳米发电机。所得结果与用PFM法得到的无接触PVDF薄膜的测量值吻合较好。
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Graphene -Gold Electrodes for Flexible Nanogenerators Based on Porous Piezoelectric PVDF Films
In this work, we develop graphene-gold electrodes (GGEs) for flexible nanogenerators made of porous piezoelectric PVDF films. The bilayer electrode structure was conceived in order to avoid the short circuit between top and bottom electrodes produced through direct Au sputtering over the film surface. Gold was sputtered over chemical-vapor- deposition (CVD) grown graphene film, that was subsequently transferred onto a PVDF film. We analysed the morphology and electrical properties of GGEs with increasing Au thickness in order to optimize the electrode surface conductivity and to guarantee high flexibility. The piezoelectric coefficient $\mathrm{d}_{33}$ of PVDF films and GGE-topped PVDF films were investigated through Piezoresponse Force Microscopy (PFM). We observed that the obtained values of $\mathrm{d}_{33}$, with and without GGEs, are in agreement with each other. This result allows to directly correlate the nanoscale piezoelectric properties to macroscale piezoelectric properties. Furthermore, a flexible nanogenerator made by a PVDF film top- and bottom- contacted with the bilayer GGEs was measured using a commercial mini -shaker. The obtained results are in good agreement with the measured $\mathrm{d}_{33}$ of the uncontacted PVDF film, obtained through PFM.
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