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Vapor sensing properties of a conductive polymer composite containing Nickel particles with nano-scale surface features

机译:包含具有纳米级表面特征的镍粒子的导电聚合物复合材料的蒸汽感测性能

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This paper presents an unusual conductive polymer composite, produced by Peratech Ltd under the trademark QTC™, which has many vapor sensing applications. Nickel particles are intimately coated by an elastomeric binder such that no percolative conduction can occur. However, the nickel particles are shown to possess spiky nanoscale surface features, which promote conduction by a field-assisted quantum tunneling mechanism. Granular QTC™ can be dispersed into a polymer matrix to produce a vapor sensor. Under exposure to vapor, the polymer swells and the resistance of the composite increases. In this work, granular sensors are subjected to acetone and tetrahydrofuran (THF) vapors. The response for THF shows an increase in resistance of a factor of 108, over a time-scale of a few seconds. This response is larger and faster than many conventional vapor sensing composites. This is a significantly larger response than that obtained historically for the same sensor, suggesting that some degree of sensor aging is desirable. The response and subsequent recovery can be explained by a case II diffusion model, and linked to Hildebrand solubility parameters of the vapor and polymer components.
机译:本文介绍了Peratech Ltd生产的商标为QTC™的一种不寻常的导电聚合物复合材料,它具有许多蒸汽传感应用。镍颗粒被弹性体粘合剂紧密覆盖,因此不会发生渗透性传导。但是,镍颗粒显示出具有尖峰的纳米级表面特征,可通过场辅助量子隧穿机制促进导电。可以将颗粒状QTC™分散到聚合物基质中以产生蒸汽传感器。在暴露于蒸气的情况下,聚合物溶胀并且复合材料的电阻增加。在这项工作中,颗粒状传感器要经受丙酮和四氢呋喃(THF)蒸气的影响。在几秒钟的时间内,对THF的响应显示电阻增加了10 8 。该响应比许多常规的蒸气感测复合物更大且更快。这是一个比以前从相同传感器获得的响应明显更大的响应,这表明需要某种程度的传感器老化。响应和随后的回收率可以通过案例II扩散模型来解释,并与蒸气和聚合物组分的Hildebrand溶解度参数相关联。

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