LSME, Faculty of Sciences, University of Sfax, BP 1171, 3018 Sfax, Tunisia.
LaMaCoP, Faculty of Sciences, University of Sfax, BP 1171, 3018 Sfax, Tunisia.
Biomacromolecules. 2022 Oct 10;23(10):4167-4178. doi: 10.1021/acs.biomac.2c00635. Epub 2022 Sep 8.
Due to its intrinsic electrical conductivity, polyaniline (PANI) is one of the most promising conducting polymers for high-performance applications in a wide range of technological fields. However, its poor dispersibility in water and organic solvents markedly imparts its processability and electrical conductivity. Herein, we report a green and one-step approach to preparing stable colloidal dispersions of highly dispersible hybrid nanoparticles by polymerizing PANI onto chitin nanocrystals (ChNCs) as biotemplates, via initiation through the surface amino groups of ChNCs. Evidence of the grafting of PANI onto ChNCs was supported by transmission electron microscopy (TEM), as well as Raman and Fourier transform infrared (FTIR) spectroscopies. Nanocomposite films were prepared by mixing the PANI--ChNCs with a waterborne poly(vinyl acetate) latex dispersion followed by casting and film formation at room temperature. The mechanical properties were tested as a function of the PANI--ChNC content. In addition, it was shown that at a proper content of PANI in ChNCs, and over a critical loading in the PANI--ChNCs, a conductive film was obtained, without sacrificing the reinforcing effect of the rodlike nanofiller. As a potential application, conductive waterborne adhesives for wood were prepared and the performance of the adhesives was tested. This research provides a facile route to fabricating a new class of hybrid nanofiller from a biobased origin, stable in water and easy to mix with waterborne dispersions, combining the merits of the ChNC nanofiller with the conductivity of PANI.
由于其固有的导电性,聚苯胺(PANI)是最有前途的导电聚合物之一,可在广泛的技术领域中应用于高性能。然而,其在水和有机溶剂中的分散性差,明显影响了其加工性能和导电性。在此,我们报告了一种绿色的一步法,通过在甲壳素纳米晶体(ChNCs)表面的氨基引发聚合,将 PANI 接枝到 ChNCs 上,制备高度分散的杂交纳米粒子的稳定胶体分散体。通过透射电子显微镜(TEM)、拉曼和傅里叶变换红外(FTIR)光谱,证明了 PANI 接枝到 ChNCs 上。通过将 PANI-ChNCs 与水性聚醋酸乙烯酯乳胶分散体混合,然后在室温下浇铸和形成薄膜,制备了纳米复合材料薄膜。作为功能化的函数,测试了机械性能。此外,研究表明,在 ChNCs 中适当含量的 PANI 和超过 PANI-ChNCs 的临界负载时,即使牺牲了棒状纳米填料的增强效果,也能获得导电膜。作为一种潜在的应用,制备了用于木材的导电水性胶粘剂,并测试了胶粘剂的性能。这项研究提供了一种从生物基来源制造新型杂交纳米填料的简便途径,该填料在水中稳定,易于与水性分散体混合,结合了 ChNC 纳米填料的优点和 PANI 的导电性。