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聚偏二氟乙烯(PVDF)/热塑性聚氨酯(TPU)纳米复合材料的可拉伸纳米纤维,通过机械弹性来支持压电响应。

Stretchable nanofibers of polyvinylidenefluoride (PVDF)/thermoplastic polyurethane (TPU) nanocomposite to support piezoelectric response via mechanical elasticity.

机构信息

Kuwait College of Science and Technology (KCST), 13133, Doha, Kuwait.

Center of Smart Materials, Nanotechnology and Photonics (CSMNP), Smart CI Research Center, Alexandria University, Alexandria, 21544, Egypt.

出版信息

Sci Rep. 2022 May 18;12(1):8335. doi: 10.1038/s41598-022-11465-5.

Abstract

Interest in piezoelectric nanocomposites has been vastly growing in the energy harvesting field. They are applied in wearable electronics, mechanical actuators, and electromechanical membranes. In this research work, nanocomposite membranes of different blend ratios from PVDF and TPU have been synthesized. The PVDF is responsible for piezoelectric performance where it is one of the promising polymeric organic materials containing β-sheets, to convert applied mechanical stress into electric voltage. In addition, the TPU is widely used in the plastic industry due to its superior elasticity. Our work investigates the piezoresponse analysis for different blending ratios of PVDF/TPU. It has been found that TPU blending ratios of 15-17.5% give higher output voltage at different stresses conditions along with higher piezosensitivity. Then, TPU addition with its superior mechanical elasticity can partially compensate PVDF to enhance the piezoelectric response of the PVDF/TPU nanocomposite mats. This work can help reducing the amount of added PVDF in piezoelectric membranes with enhanced piezo sensitivity and mechanical elasticity.

摘要

在能量收集领域,对压电纳米复合材料的兴趣日益浓厚。它们应用于可穿戴电子产品、机械致动器和机电膜。在这项研究工作中,合成了不同共混比的 PVDF 和 TPU 纳米复合膜。PVDF 负责压电性能,它是一种有前途的含β片层的聚合物有机材料之一,可将施加的机械应力转化为电压。此外,由于其优异的弹性,TPU 在塑料工业中得到了广泛的应用。我们的工作研究了不同共混比的 PVDF/TPU 的压电阻尼分析。结果发现,在不同的应力条件下,TPU 的共混比为 15-17.5%时会产生更高的输出电压,同时具有更高的压敏性。然后,TPU 的加入及其优异的机械弹性可以部分补偿 PVDF,从而提高 PVDF/TPU 纳米复合垫的压电响应。这项工作有助于减少添加到具有增强的压敏性和机械弹性的压电膜中的 PVDF 量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/df1d/9117269/9cab7b3fa3f0/41598_2022_11465_Fig1_HTML.jpg

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