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Piezoelectricity Enhancement of Nanogenerators Based on PDMS and ZnSnO3 Nanowires through Microstructuration

机译:基于PDMS和ZnSNO3纳米线通过微结构的压电增强

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The current trend for smart, self-sustainable, and multifunctional technology demands for the development of energy harvesters based on widely available and environmentally friendly materials. In this context, ZnSnO3 nanostructures show promising potential because of their high polarization, which can be explored in piezoelectric devices. Nevertheless, a pure phase of ZnSnO3 is hard to achieve because of its metastability, and obtaining it in the form of nanowires is even more challenging. Although some groups have already reported the mixing of ZnSnO3 nanostructures with polydimethylsiloxane (PDMS) to produce a nanogenerator, the resultant polymeric film is usually flat and does not take advantage of an enhanced piezoelectric contribution achieved through its microstructuration. Herein, a microstructured composite of nanowires synthesized by a seed-layer free hydrothermal route mixed with PDMS (ZnSnO3@PDMS) is proposed to produce nanogenerators. PFM measurements show a clear enhancement of d(33) for single ZnSnO3 versus ZnO nanowires (23 +/- 4 pm/V vs 9 +/- 2 pm/V). The microstructuration introduced herein results in an enhancement of the piezoelectric effect of the ZnSnO3 nanowires, enabling nanogenerators with an output voltage, current, and instantaneous power density of 120 V, 13 mu A, and 230 mu W.cm(-2), respectively. Even using an active area smaller than 1 cm(2), the performance of this nanogenerator enables lighting up multiple LEDs and other small electronic devices, thus proving great potential for wearables and portable electronics.
机译:基于广泛可用和环保材料的智能,自动可持续和多功能技术需求的当前趋势,对能源收割机的发展。在这种情况下,由于它们的高极化,ZnSNO3纳米结构显示出有希望的潜力,这可以在压电装置中探索。然而,由于其稳定性,ZnSNO3的纯阶段难以实现,并且以纳米线的形式获得其更具挑战性。虽然一些组已经报道了ZnSNO3纳米结构与聚二甲基硅氧烷(PDMS)混合以产生纳米液,但是所得的聚合物薄膜通常是平坦的,并且不利用通过其微观化稳定实现的增强的压电贡献。在此,提出了由与PDMS(ZnSNO3 @ PDMS)混合的种子层游离水热路线合成的纳米线的微结构化复合物,得到纳米液。 PFM测量显示单个ZnSNO3与ZnO纳米线的D(33)的明显增强(23 +/- 4 pm / v Vs 9 +/- 2 pm / v)。本文中引入的微观细菌结果导致ZnSNO3纳米线的压电效应的增强,使纳米液体分别具有120 V,13μma和230μmwmm(-2)的输出电压,电流和瞬时功率密度。即使使用小于1厘米(2)的有源区,该纳​​米液的性能也能够照亮多个LED和其他小型电子设备,从而证明可穿戴设备和便携式电子设备的巨大潜力。

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