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Development of Carbon-Based Nano-Composite Materials for Direct Electron Transfer Based Biosensors

机译:用于直接电子转移的生物传感器的碳基纳米复合材料的开发

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Nation, an ion exchange polymer that is very resistant to chemical attack, even by strong oxidant at high temperatures, has found great increasing use as a film material; however, its use as immobilizing agent in third-generation biosensors is hindered due to the low rate of charge transfer in the pure Nafion film. In this work we showed that the use of functionalized multi-walled carbon nanotubes Nafion/MWCNTs composite film for modification of the carbon-based electrode surfaces would increase the charge transfer rate greatly; the composite has proven to efficiently immobilize two different heme proteins (catalase and cytochrome c) and to enhance the electrochemical performances of several carbon electrode materials (glassy carbon, mesoporous graphite, graphite and graphene) either used as classical electrodes or screen printed ones. The electrochemical signal of both redox proteins becomes more reversible and the electron transfer kinetic constant increases. At the same time the biological activity is maintained indicating that the immobilization procedure allows the proteins to retain a native-like structure.
机译:Nation是一种离子交换聚合物,即使在高温下也能抵抗强化学腐蚀,即使在高温下也很耐化学腐蚀,已被广泛用作薄膜材料。然而,由于纯Nafion薄膜中电荷转移速率低,因此阻碍了其在第三代生物传感器中用作固定剂。在这项工作中,我们表明,使用功能化的多壁碳纳米管Nafion / MWCNTs复合膜对碳基电极表面进行改性将大大提高电荷转移速率。该复合材料已被证明能够有效地固定两种不同的血红素蛋白(过氧化氢酶和细胞色素c),并增强了几种用作经典电极或丝网印刷电极的碳电极材料(玻璃碳,中孔石墨,石墨和石墨烯)的电化学性能。两种氧化还原蛋白的电化学信号变得更可逆,电子转移动力学常数增加。同时,保持了生物学活性,表明固定程序允许蛋白质保留天然样结构。

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