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An Investigation Into Using Regenerated Cellulose-based Electro-conductive Composites for Actuation and Drug Delivery

机译:利用再生纤维素基导电复合材料进行驱动和给药的研究

摘要

Under the influence of an electric field, ionic electro-active polymers generally bend or deswell, depending on the shape of the polymer matrices and its position relative to the electrodes. In this study, we investigate the bending behaviour of regenerated cellulose-based ionic electro-active composites for the fabrication of soft actuators with improved actuation force and durability. This research also focuses on the externally induced (electrically and magnetically) matrices deswelling and other responses, which affect the release of drug from the matrices. For actuation studies, we prepared matrices by combining carbon nanofibers, conducting polymers, and ionic liquids (through blending, doping, or coating) into the regenerated cellulose. We observed that actuators coated by polypyrrole doped with anthraquinone-2-sulfonic acid sodium salt monohydrate showed improved electrical conductivity and durability compared to that of using perchlorate ion as the dopant. This is due to the preparation process and the effect of dopants that play an important role to improve the performance of the regenerated cellulose-based ionic electro-active actuators. In addition, we investigated the influence of electrode design (layer-by-layer structure) on the properties of the actuators. Further, in this study, we developed three types of matrices consisting of regenerated cellulose/functionalized carbon nanofibers, regenerated cellulose/functionalized carbon nanofibers/polypyrrole, and regenerated cellulose/γ-ferric oxide/polypyrrole. We investigated the effects of electric field strength and electrode polarity on the release rate of sulfosalicylic acid (drug) in an acetate buffer solution with pH 5.5 and temperature 37 ᵒC during a period of 5 h. Drug release rate from the matrices containing carbon nanofibers (additives) increased effectively with increasing applied electric field. The mechanism of drug release from drug-doped polypyrrole coated matrices includes expansion of conductive polymer chain and the electrostatic force between electron and drug. The novelty of the work is- the matrices can also work under magnetic field and consequently, one can be beneficial from a contactless actuation. In this study, we also investigated electrical conductivity, morphology, swelling behaviour of the composite matrices, electro-active composite-drug interaction, and in vitro drug release behaviour of the matrices. Further, a comparative study was performed on the rate of drug release from the matrices induced by electric and magnetic field.
机译:在电场的影响下,离子电活性聚合物通常会弯曲或发生溶胀,这取决于聚合物基质的形状及其相对于电极的位置。在这项研究中,我们研究了再生纤维素基离子电活性复合材料的弯曲行为,该复合材料用于制造具有改进的驱动力和耐用性的软驱动器。这项研究还集中在外部感应(电和磁)基质的溶胀和其他响应上,这会影响药物从基质中的释放。对于驱动研究,我们通过将碳纳米纤维,导电聚合物和离子液体(通过混合,掺杂或涂覆)结合到再生纤维素中来制备基质。我们观察到,与使用高氯酸根离子作为掺杂剂相比,涂有蒽醌-2-磺酸钠一水合物的聚吡咯涂层致动器具有更高的电导率和耐久性。这归因于制备过程和掺杂剂的作用,这些掺杂剂对提高再生纤维素基离子型电活性致动器的性能起着重要作用。此外,我们研究了电极设计(逐层结构)对执行器性能的影响。此外,在这项研究中,我们开发了三种类型的基质,包括再生纤维素/功能化碳纳米纤维,再生纤维素/功能化碳纳米纤维/聚吡咯和再生纤维素/γ-氧化铁/聚吡咯。我们研究了电场强度和电极极性对pH值为5.5且温度为37ᵒC的醋酸盐缓冲溶液在5小时内磺基水杨酸(药物)释放速率的影响。随着施加电场的增加,含有碳纳米纤维(添加剂)的基质的药物释放速率有效提高。从掺杂有药物的聚吡咯涂层基质中释放药物的机理包括导电聚合物链的扩展以及电子与药物之间的静电力。工作的新颖性是-矩阵也可以在磁场下工作,因此,可以从非接触式致动中受益。在这项研究中,我们还研究了电导率,形态,复合基质的溶胀行为,电活性复合药物相互作用以及基质的体外药物释放行为。此外,对由电场和磁场引起的基质中药物的释放速率进行了比较研究。

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    Chowdhury Nargis Afroj;

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  • 年度 2014
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  • 正文语种 en
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