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首页> 外文期刊>Electrochemistry communications >Electrochemical properties of interface formed by interlaced layers of DNA- and lysozyme-coated single-walled carbon nanotubes
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Electrochemical properties of interface formed by interlaced layers of DNA- and lysozyme-coated single-walled carbon nanotubes

机译:由DNA和溶菌酶涂覆的单壁碳纳米管的交错层形成的界面的电化学性质

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Multifunctional coatings were produced by the layer by layer assembly of single-walled carbon nanotubes (SWNT) dispersed in DNA and lysozyme (LSZ) on an insulating glass substrate. The electrochemical properties of these mechanically robust biocoatings were characterized for the first time using scanning electrochemical microscopy (SECM) and impedance spectroscopy (IS). SECM surface analysis demonstrated an increase in tip current with a corresponding increase in the number of oppositely polarized interlaced layers, indicating that subsequent layers were not electrically insulated from each other and a direct correlation exists between SECM feedback response and the number of layers. The rate of charge transport was also dependent on the chemical composition/polarity of the Outermost surface layer. Coatings terminating in SWNT-DNA resulted in more positive feedback than those terminating in SWNT-LSZ. IS analysis demonstrated that the SWNT-DNA had a low charge transfer resistance in comparison with SWNT-LSZ, which is consistent with the results obtained by SECM These results enable enhanced fundamental understanding and prediction of the electrical properties of SWNT-biopolymer layers with controlled interlaced polarities and orientation. Furthermore, these finding highlight the potential for SWNT-biopolymers in electronic and sensing applications. (c) 2009 Elsevier B.V. All rights reserved.
机译:多功能涂料是通过在绝缘玻璃基板上逐层组装分散在DNA和溶菌酶(LSZ)中的单壁碳纳米管(SWNT)制成的。这些机械坚固的生物涂层的电化学性能是首次使用扫描电化学显微镜(SECM)和阻抗谱(IS)进行表征。 SECM表面分析表明,尖端电流增加,而相反极性的隔行扫描层数相应增加,这表明后续各层之间并未电气绝缘,并且SECM反馈响应与层数之间存在直接相关性。电荷传输速率还取决于最外表面层的化学组成/极性。终止于SWNT-DNA的涂层比终止于SWNT-LSZ的涂层产生更多的积极反馈。 IS分析表明,SWNT-DNA与SWNT-LSZ相比具有较低的电荷转移阻力,这与SECM获得的结果一致。这些结果使人们能够更好地了解和预测具有受控隔行扫描的SWNT-生物聚合物层的电性能。极性和方向。此外,这些发现凸显了SWNT生物聚合物在电子和传感应用中的潜力。 (c)2009 Elsevier B.V.保留所有权利。

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