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Heterogeneous preparation of polyaniline-cellulose conductive composites with cellulose pretreated by ultrasonic and its electrical properties

机译:超声预处理的纤维素多相制备聚苯胺-纤维素导电复合材料及其电性能

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A series of conductive composites polyaniline(PANI)-cellulose were heterogeneously synthesized by chemical oxidative polymerization of aniline with native cellulose pretreated by ultrasonic. The morphology and chemical structure of the composites were examined by SEM and FTIR. TGA was used to study their thermal properties. The electrical conductivity was measured at room temperature by the standard four-probe method. For the sake of illuminating the influence of ultrasonic pretreatment on the structure and properties of PANI-cellulose composites, the SEM microphotographs, FTIR spectrum and TG curve of the PANI-cellulose composites prepared with native cellulose without any treatment were also shown in this paper to serve as reference. The PANI content and electrical conductivity of these two composites were also compared. It was found that cellulose surface was severely eroded by ultrasonic wave, and PANI homogeneously dispersed on this eroded cellulose surface in the form of particles. In reverse, the PANI particles loaded on the surface of untreated cellulose with evident aggregation. The homogeneous dispersion of PANI particles would be favor for the improvement of the electrical conductivity of the composites. From the FTIR spectra, it was verified that there was no difference between these two composites. It indicated that ultrasonic force did not lead to the variation of the chemical structure of cellulose. TG curves revealed that the thermal stability of PANI-cellulose composites was obviously enhanced than pure cellulose due to the protection of PANI particles deposited on its surface. Nevertheless, ultrasonic has a negative effect on the thermal stability of the composites, which resulted in the long cellulose molecular chains change into shorter ones, so the decomposition of composite occurred at lower temperature. It was because that ultrasonic pretreatment contributed to the homogeneous dispersion of PANI and more PANI particle depositing on the cellulose surface. Therefore, the PANI-cellulose composites with ultrasonic pretreated cellulose have more PANI content and higher electrical conductivity than the composites with untreated cellulose. Moreover, the difference of these two factors between the two composites became more and more marked with increasing of the amount of aniline. When aniline used was up to 0.5 g, the PANI content in the former was 48.2% more than the latter. This work provided a facile method for the synthesis of PANI-cellulose conductive composites with excellent conductivity.
机译:通过超声预处理苯胺与天然纤维素的化学氧化聚合反应,异质合成了一系列导电复合材料聚苯胺(PANI)-纤维素。用SEM和FTIR检查了复合材料的形貌和化学结构。 TGA用于研究其热性能。通过标准四探针法在室温下测量电导率。为了阐明超声预处理对PANI-纤维素复合材料的结构和性能的影响,本文还显示了未经处理的天然纤维素制得的PANI-纤维素复合材料的SEM显微照片,FTIR光谱和TG曲线,以说明如何处理。作为参考。还比较了这两种复合材料的PANI含量和电导率。发现纤维素表面被超声波严重腐蚀,并且PANI以颗粒形式均匀地分散在该腐蚀的纤维素表面上。相反,PANI颗粒负载在未经处理的纤维素表面上,具有明显的聚集。 PANI颗粒的均匀分散将有利于提高复合材料的电导率。从FTIR光谱,证实了这两种复合物之间没有差异。这表明超声力没有导致纤维素化学结构的变化。 TG曲线表明,由于对沉积在其表面的PANI颗粒的保护,PANI-纤维素复合材料的热稳定性明显高于纯纤维素。然而,超声波对复合材料的热稳定性有负面影响,导致长的纤维素分子链变成较短的分子链,因此复合材料的分解发生在较低的温度下。这是因为超声预处理有助于PANI的均匀分散和更多的PANI颗粒沉积在纤维素表面上。因此,具有超声预处理的纤维素的PANI-纤维素复合物比具有未经处理的纤维素的复合物具有更多的PANI含量和更高的电导率。而且,随着苯胺含量的增加,两种复合材料之间这两个因素的差异变得越来越明显。当苯胺使用量最高为0.5 g时,前者的PANI含量比后者高48.2%。这项工作为合成具有优异导电性的PANI-纤维素导电复合材料提供了一种简便的方法。

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