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受“手性介孔二氧化硅纳米胶囊”启发的通用策略,用于提高聚合物基纳米复合材料应变传感器的压阻灵敏度和弹性。

Nuomici-Inspired Universal Strategy for Boosting Piezoresistive Sensitivity and Elasticity of Polymer Nanocomposite-Based Strain Sensors.

机构信息

Leibniz Institute of Polymer Research Dresden (IPF) , Hohe Str. 6 , 01069 Dresden , Germany.

Organic Chemistry of Polymers , Technische Universität Dresden , 01062 Dresden , Germany.

出版信息

ACS Appl Mater Interfaces. 2019 Sep 25;11(38):35362-35370. doi: 10.1021/acsami.9b13510. Epub 2019 Sep 11.

Abstract

Electrically conductive polymer composites (CPCs) are potential alternatives to conventional strain gauges due to their tunable sensitivity and strain ranges. Currently, to achieve very high piezoresistive sensitivity in thermoplastic-based CPCs with Gauge factors above 20 at low tensile strains (ε ≤ 5%) is a big challenge, but critical for structural health monitoring application in infrastructures. Here, inspired by the unique structures of a famous Chinese food, nuomici, we coat carbon nanotubes (CNTs) onto sticky acrylic rubber (AR) granules (ARG) to form nuomici-like CNT@ARG composite granules, which are employed as unique conductive filler to fabricate highly piezoresistive and flexible CPCs based on poly(vinylidene fluoride) (PVDF). This strategy of localizing CNTs densely on the surface of touching rubbery particles resulted in a much more sensitive elastic conductive network built by the CNT@AR composite and showed a big gain effect. The resultant PVDF/CNT@AR nanocomposites (AR content ranging from 0 to 10 wt %) show extremely high piezoresistive sensitivity at low strain, depending on the AR content. In particular, the value of PVDF with 1.5 wt % CNT@10 wt % AR is 41 at 5% strain, which is more than one magnitude higher than that (ca. 3) of traditional PVDF/CNT nanocomposite sensors. Moreover, the elongation at break increases by about 60% with the addition of 1.5 wt CNT@10 wt % AR. This study introduces a universal effective strategy for tailoring the mechanical properties and strain sensitivity of conductive network in CPCs, which is critical for the fabrication of high-performance strain sensors.

摘要

导电高分子复合材料(CPCs)由于其可调灵敏度和应变范围,是传统应变计的潜在替代品。目前,在基于热塑性的 CPCs 中实现非常高的压阻灵敏度,其压阻系数在低拉伸应变(ε≤5%)下大于 20 是一个巨大的挑战,但对于基础设施中的结构健康监测应用至关重要。在这里,受中国著名小吃糯米饭的独特结构的启发,我们将碳纳米管(CNTs)涂覆到粘性丙烯酸橡胶(AR)颗粒(ARG)上,形成类似糯米饭的 CNT@ARG 复合颗粒,将其用作独特的导电填料来制造基于聚偏二氟乙烯(PVDF)的高压阻和柔性 CPCs。这种将 CNT 密集定位在接触橡胶颗粒表面的策略导致 CNT@AR 复合材料构建的弹性导电网络更加敏感,并显示出更大的增益效果。所得到的 PVDF/CNT@AR 纳米复合材料(AR 含量从 0 到 10wt%)在低应变下表现出极高的压阻灵敏度,这取决于 AR 含量。特别是,在 5%应变下,含有 1.5wt% CNT@10wt%AR 的 PVDF 的 值为 41,比传统的 PVDF/CNT 纳米复合材料传感器的 值(约 3)高一个数量级。此外,加入 1.5wt%CNT@10wt%AR 可使断裂伸长率提高约 60%。本研究介绍了一种通用的有效策略,用于调整 CPCs 中导电网络的机械性能和应变灵敏度,这对于制造高性能应变传感器至关重要。

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