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Plasma-activated multi-walled carbon nanotube-polystyrene composite substrates for biosensing

机译:等离子活化多壁碳纳米管-聚苯乙烯复合材料的生物传感

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Carbon nanotube-polymer composites have shown to be suitable materials for the fabrication of electrochemical transducers. The exposed surface of these materials is commonly passivated by a very thin layer of the polymer component that buries the conductive carbon particles. Working with multi-walled carbon nanotube-polystyrene (MWCNT-PS) composite structures, it was previously described how a simple low power oxygen plasma process produced an effective etching of the composite surface, thereby exposing the conductive surface of CNTs. This work shows how this plasma process not only gave rise to a suitable composite conductive surface for electrochemical sensing but simultaneously exposed and created a high density of oxygen-containing functional groups at both the CNT and the PS components, without affecting the material's mechanical stability. These chemical groups could be effectively modified for the stable immobilization of biological receptors. A detailed chemical characterization of the plasma-activated composite surface was possible using x-ray photoelectron spectroscopy. The material reactivity towards the tethering of a protein was studied and protein-protein interactions were then evaluated on the modified composite transducers by scanning electron microscopy. Finally, an amperometric immunosensor approach for the detection of rabbit Immunoglobulin G target analyte was described and a minimum concentration of 3 ng ml~(-1) was easily measured.
机译:碳纳米管-聚合物复合材料已经证明是用于制造电化学换能器的合适材料。这些材料的裸露表面通常被掩埋导电碳颗粒的非常薄的聚合物组分层钝化。先前已经描述了使用多壁碳纳米管-聚苯乙烯(MWCNT-PS)复合结构,如何通过简单的低功率氧等离子体工艺对复合物表面进行有效蚀刻,从而暴露出CNT的导电表面。这项工作表明,这种等离子工艺不仅可以产生用于电化学感应的合适的复合导电表面,而且可以同时在CNT和PS组件上曝光并产生高密度的含氧官能团,而又不影响材料的机械稳定性。这些化学基团可被有效地修饰以稳定地固定生物受体。使用X射线光电子能谱可以对等离子体活化的复合材料表面进行详细的化学表征。研究了对蛋白质束缚的材料反应性,然后通过扫描电子显微镜在改良的复合换能器上评估了蛋白质-蛋白质相互作用。最后,描述了一种用于检测兔免疫球蛋白G目标分析物的安培免疫传感器方法,并且很容易测量最低浓度为3 ng ml〜(-1)。

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