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首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Polymeric nanocomposites made of a conductive polymer and a thermosensitive hydrogel: Strong effect of the preparation procedure on the properties
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Polymeric nanocomposites made of a conductive polymer and a thermosensitive hydrogel: Strong effect of the preparation procedure on the properties

机译:由导电聚合物和热敏水凝胶制成的聚合物纳米复合材料:制备过程对性能的强烈影响

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摘要

Nanocomposites are made by loading a conductive polymer (polyaniline, PANI) inside a thermosensitive hydrogel matrix (poly(N-isopropylacrylamide)-co-(2-acrylamido-2-methylpropane sulfonic acid), HG). The composites were obtained by two loading methods: i) in-situ polymerization of aniline inside the hydrogel matrix (ISP) and ii) by swelling of hydrogel in a true solution (SIS) of PANI (base) in N-methylpyrrolidone. Even though the composites have similar chemical composition, scanning electronic microscopy (SEM) shows different morphologies for each material obtained. ISP produces a material with segregated nanodomains of PANI inside HG, building a true nanocomposite (NC). On the other hand, SIS seems to create a semi-interpenetrated (semi-IPN) network of PANI inside the HG. The swelling capacity and volume phase transition temperature (VPTT) of composites are also affected by the loading methods. The segregated nanodomains of PANI in the NC do not affect the thermosensitivity of HG, while the PANI chains are directly interacting with the HG chains in the semi-IPN, affecting the VPTT. The swelling capacity of NC is of % Sweq - 6500 while the semi-IPN is of % Sweq - 8600. Both of them are lower than the one of pure HG (% Sweq = 11,000). The elastic module of both materials is higher than HG. The states of water analyzed by DSC show a high hydrophobic character inside the composite. The amount of water interacting with HG chains decreases with the presence of PANI. Both composites show electronic conductivity which changes when pressure is applied on them. However the NC shows a larger gauge factor. Such property could be applied in a pressure sensor. Additionally, the thermal sensitivity of the matrix is coupled with the electronic conductivity of PANI, allowing to build an electric switch controlled by the temperature. (C) 2015 Elsevier Ltd. All rights reserved.
机译:纳米复合材料是通过将导电聚合物(聚苯胺,PANI)装入热敏水凝胶基质(聚(N-异丙基丙烯酰胺)-共-(2-丙烯酰胺基-2-甲基丙烷磺酸),HG)制成的。通过两种加载方法获得复合材料:i)在水凝胶基质(ISP)内部进行苯胺的原位聚合,和ii)在N-甲基吡咯烷酮的PANI(碱)的真实溶液(SIS)中溶胀水凝胶。即使复合材料具有相似的化学组成,扫描电子显微镜(SEM)仍显示每种获得的材料具有不同的形态。 ISP生产的材料在HG内部具有PANI隔离的纳米域,从而构建了真正的纳米复合材料(NC)。另一方面,SIS似乎在HG内部创建了PANI的半互穿(semi-IPN)网络。复合材料的溶胀能力和体积相变温度(VPTT)也受加载方法的影响。 NC中PANI的分离的纳米域不影响HG的热敏性,而PANI链则直接与半IPN中的HG链相互作用,从而影响VPTT。 NC的溶胀能力为%Sweq-6500,而半IPN的溶胀能力为%Sweq-8600。这两者均低于纯HG的溶胀能力(%Sweq = 11,000)。两种材料的弹性模量均高于HG。通过DSC分析的水的状态显示出复合材料内部的高疏水性。随着PANI的存在,与HG链相互作用的水量减少。两种复合材料均显示出电导率,当对其施加压力时,电导率会发生变化。但是,NC显示出更大的规格系数。这种特性可以应用于压力传感器。此外,矩阵的热敏性与PANI的电子传导性相关,从而可以构建受温度控制的电开关。 (C)2015 Elsevier Ltd.保留所有权利。

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