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Structure-Property Relationships in Hybrid Cellulose Nanofibrils/Nafion-Based Ionic Polymer-Metal Composites

机译:纤维素纳米纤维/ Nafion离子聚合物-金属复合材料的结构-性能关系

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摘要

Herein, we report the production of ionic polymer-metal composites (IPMCs) hybridized with cellulose nanofibrils (CNF) as a partial substitute for Nafion®. The aim is not only to reduce the production cost and enhance respective mechanical/thermal properties but also to bestow a considerable degree of biodegradability to such products. Formulations with different CNF/Nafion® ratios were produced in a thin-film casting process. Crack-free films were air-dried and plated by platinum (Pt) through an oxidation-reduction reaction. The produced hybrids were analyzed in terms of thermal stability, mechanical and morphological aspects to examine their performance compared to the Nafion-based IPMC prior to plating process. Results indicated that films with higher CNF loadings had improved tensile strengths and elastic moduli but reduced ductility. Thermogravimetric analysis (TGA) showed that the incorporation of CNF to the matrix reduced its thermal stability almost linearly, however, the onset of decomposition point remained above 120 °C, which was far above the temperature the composite membrane is expected to be exposed to. The addition of a cross-linking agent to the formulations helped with maintaining the integrity of the membranes during the plating process, thereby improving surface conductivity. The focus of the current study was on the physical and morphological properties of the films, and the presented data advocate the potential utilization of CNF as a nontoxic and sustainable bio-polymer for blending with perfluorosulfonic acid-based co-polymers, such as Nafion®, to be used in electroactive membranes.
机译:在此,我们报道了与纤维素纳米原纤维(CNF)杂交的离子聚合物-金属复合材料(IPMC)的生产,作为Nafion ®的部分替代品。目的不仅在于降低生产成本并增强各自的机械/热性能,而且还在于赋予此类产品相当程度的生物降解性。在薄膜浇铸过程中生产出具有不同CNF / Nafion ®比的配方。将无裂纹的薄膜风干并通过氧化还原反应镀铂(Pt)。在镀覆过程之前,与基于Nafion的IPMC相比,对生产的杂种进行了热稳定性,机械和形态学方面的分析,以检查其性能。结果表明,具有较高CNF含量的薄膜具有改善的拉伸强度和弹性模量,但延展性降低。热重分析(TGA)表明,将CNF掺入基质中几乎会线性降低其热稳定性,但是,分解点的起点仍保持在120°C以上,该温度远高于复合膜所预期的暴露温度。向配方中添加交联剂有助于在电镀过程中保持膜的完整性,从而提高表面电导率。当前研究的重点是薄膜的物理和形态特性,目前的数据提倡将CNF作为无毒且可持续的生物聚合物与全氟磺酸基共聚物(如Nafion < sup>®,用于电活性膜。

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