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Flexible conducting polymer-based cellulose substrates for on-skin applications

机译:用于皮肤上的柔性导电聚合物基纤维素基材

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摘要

Flexible electroactive cellulose-based substrates were successfully fabricated via electropolymerization of either polypyrrole (PPy) or poly(3,4-ethylenedioxythiophene) (PEDOT) in the presence of sodium dodecyl sulphate (SDS) onto platinum-coated cellulose substrates. Results showed that the conductive polymers were evenly deposited onto the platinum-coated cellulose substrates, respectively without compromising the submicro roughness topography of the substrate. In fact, nanoroughness feature was formed by the deposition of conductive polymers on the individual fibres of the cellulose paper, both of which are highly important in regulating cell adhesion, proliferation and migration. The various electroactive cellulose-based papers exhibited good mechanical and structural properties as well as good cytocompatibility by supporting the attachment and proliferation of immortalized human keratinocytes (HaCaT cells). In addition, copper (Cu2+) and the zinc (Zn2+) ions were proved to be successfully doped into these PPy- and PEDOT-cellulose substrates. The PEDOT resulted in the higher doping of Cu2+ and Zn2+ ions, which was confirmed by the ions release studies. Furthermore, the PEDOT-cellulose substrates exhibited significantly higher mechanical properties, better initial cell attachment and higher electrochemical capacitance as compared to PPy-cellulose substrates. Overall, the results suggested that the PEDOT-cellulose substrates could potentially be a better choice of smart skin dressings, integration interface between skin and artificial devices or implantable electronic materials.
机译:通过聚吡咯(PPY)或聚(3,4-亚乙二氧基噻吩)(PEDOT)在十二烷基硫酸钠(SDS)存在下成功制造柔性电活性纤维素基底物。结果表明,导电聚合物分别均匀地沉积在铂涂覆的纤维素基材上,而不会损害基材的亚微米粗糙度形貌。实际上,通过在纤维素纸的各个纤维上沉积导电聚合物,两者在调节细胞粘附,增殖和迁移方面非常重要地形成纳米应电。各种电活性纤维素的纸张通过支持永生化人角蛋白细胞(HACAT细胞)的附着和增殖来表现出良好的机械和结构性能以及良好的细胞组合。另外,证明铜(Cu2 +)和锌(Zn2 +)离子被成功地掺杂到这些PPY和培养基纤维素基材中。佩特导致Cu 2 +和Zn2 +离子的较高掺杂,其被离子释放研究证实。此外,与PPY纤维素基材相比,培养基纤维素基材表现出显着更高的机械性能,更好的初始电池附着和更高的电化学电容。总体而言,结果表明,培养基纤维素基材可能是更好地选择智能皮肤敷料,皮肤和人造装置之间的集成界面或可植入的电子材料。

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