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将掺杂聚(3-己基噻吩)涂层应用于壳聚糖:开发生物基柔性电子的新方法。

Doped Poly(3-hexylthiophene) Coatings onto Chitosan: A Novel Approach for Developing a Bio-Based Flexible Electronic.

机构信息

Facultad de Ciencias, Centro de Nanotecnología Aplicada, Universidad Mayor, Camino la Pirámide 5750, Santiago 8580745, Chile.

Departamento de Química Física, Facultad de Química, Pontificia Universidad Católica de Chile, Casilla 302, Correo 22, Santiago 7820436, Chile.

出版信息

ACS Appl Mater Interfaces. 2020 Mar 18;12(11):13275-13286. doi: 10.1021/acsami.9b21289. Epub 2020 Mar 3.

Abstract

Conductive and flexible bio-based materials consisting of chitosan films coated with conductive poly(3-hexylthiophene) (P3HT) were prepared. Thermal, optical, mechanical, morphological, wettability, and conductive properties were analyzed. In a very simple and effective method of chitosan film modification, a controlled volume of a P3HT solution was deposited onto a previously formed chitosan film, assisted by the spin coating method. Later, P3HT-coated chitosan films were doped by simple contact with an aqueous solution of HAuCl. The use of HAuCl becomes attractive because the reports on the doping process in this type of material using this reagent are still scarce and recent to date. In addition, since this acid is a well-known metal nanoparticle precursor, its use opens new future perspectives for these materials into new applications. The effect of P3HT concentration and doping times on film properties was studied. Attenuated total reflectance spectroscopy and UV-Vis spectroscopy allowed us to demonstrate that the presence of the P3HT coating and its doping induce significant changes in the vibrational modes and optoelectronic properties of samples. Additionally, the images obtained by scanning electron microscopy showed a well-distributed and homogeneous coating on the surface of chitosan films. Measured conductivity values of doped film samples fall in the range from 821.3 to 2017.4 S/m, representing, to the best of our knowledge, the highest values reported in the literature for chitosan/chitin-based materials. Indeed, these values are around or even higher than those obtained for some materials purely consisting of conductive polymers.

摘要

制备了由涂覆有导电聚(3-己基噻吩)(P3HT)的壳聚糖膜组成的导电且柔韧的生物基材料。分析了其热学、光学、力学、形态学、润湿性和导电性。在一种非常简单有效的壳聚糖膜改性方法中,通过旋涂法将一定体积的 P3HT 溶液沉积到预先形成的壳聚糖膜上。之后,通过简单地与含有 HAuCl 的水溶液接触对 P3HT 涂覆的壳聚糖膜进行掺杂。使用 HAuCl 变得很有吸引力,因为迄今为止,关于使用这种试剂在这种类型的材料中进行掺杂过程的报告仍然很少且最近。此外,由于该酸是众所周知的金属纳米颗粒前体,因此其使用为这些材料开辟了进入新应用的新未来前景。研究了 P3HT 浓度和掺杂次数对薄膜性能的影响。衰减全反射光谱和紫外-可见光谱使我们能够证明 P3HT 涂层的存在及其掺杂会引起样品振动模式和光电性能的显着变化。此外,扫描电子显微镜获得的图像显示了壳聚糖膜表面上均匀分布且均匀的涂层。掺杂膜样品的测量电导率值在 821.3 至 2017.4 S/m 范围内,就我们所知,这代表了壳聚糖/壳多糖基材料文献中报道的最高值。实际上,这些值与某些仅由导电聚合物组成的材料的值相近或甚至更高。

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