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Nanofilm of ZnO nanocrystals/carbon nanotubes as biocompatible layer for enzymatic biosensors in capacitive field-effect devices

机译:ZnO纳米晶体/碳纳米管的纳米膜作为电容场效应装置中酶生物传感器的生物相容性层

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摘要

The incorporation of nanomaterials that are biocompatible with different types of biological compounds has allowed the development of a new generation of biosensors applied especially in the biomedical field. In particular, the integration of film-based nanomaterials employed in field-effect devices can be interesting to develop biosensors with enhanced properties. In this paper, we studied the fabrication of sensitive nanofilms combining ZnO nanocrystals and carbon nanotubes (CNTs), prepared by means of the layer-by-layer (LbL) technique, in a capacitive electrolyte-insulator-semiconductor (EIS) structure for detecting glucose and urea. The ZnO nanocrystals were incorporated in a polymeric matrix of poly(allylamine) hydrochloride (PAH), and arranged with multi-walled CNTs in a LbL PAH-ZnO/CNTs film architecture onto EIS chips. The electrochemical characterizations were performed by capacitance- voltage and constant capacitance measurements, while the morphology of the films was characterized by atomic force microscopy. The enzymes glucose oxidase and urease were immobilized on film's surface for detection of glucose and urea, respectively. In order to obtain glucose and urea biosensors with optimized amount of sensitive films, we investigated the ideal number of bilayers for each detection system. The glucose biosensor showed better sensitivity and output signal for an LbL PAH-ZnO/CNTs nanofilm with 10 bilayers. On the other hand, the urea biosensor presented enhanced properties even for the first bilayer, exhibiting high sensitivity and output signal. The presence of the LbL PAH-ZnO/CNTs films led to biosensors with better sensitivity and enhanced response signal, demonstrating that the adequate use of nanostructured films is feasible for proof-of-concept biosensors with improved properties that may be employed for biomedical applications.
机译:其是生物相容的具有不同类型的生物化合物的纳米材料的并入已经允许了新一代生物传感器的开发在生物医学领域特别适用。特别是,在场效应器件中使用的基于胶片的纳米材料的集成可以是有趣的,开发具有提高的性能的生物传感器。在本文中,我们研究了敏感纳米膜结合的ZnO纳米晶体和碳纳米管(CNT),通过层 - 层(LBL)技术制备,在电容电解质 - 绝缘体 - 半导体(EIS)结构,用于检测的制造葡萄糖和尿素。在ZnO纳米晶体在的聚合物基质掺入聚(烯丙胺)盐酸盐(PAH),并布置成与在层层PAH-ZnO系/碳纳米管膜结构的多壁CNT到EIS的芯片。电化学表征通过电容 - 电压和恒定电容测量执行,而薄膜的形态的特征在于通过原子力显微镜。酶的葡萄糖氧化酶和脲酶分别固定在膜的表面,用于检测葡萄糖和尿素的,。为了获得葡萄糖和尿素的生物传感器用感光胶片的优化量,我们调查双层的理想数目为每个检测系统。葡萄糖生物传感器显示出更好的灵敏度和输出信号的LbL PAH-ZnO系/碳纳米管纳米膜用10个双层。在另一方面,所述生物传感器尿素呈现的增强的性能,即使是第一双层,表现出高灵敏度和输出信号。导致具有更好的灵敏度和增强的响应信号的生物传感器的的LbL PAH-ZnO系/碳纳米管薄膜的存在,这表明适当使用纳米结构化膜的是用于验证的概念生物传感器与可用于生物医学应用的改进的性能是可行的。

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  • 来源
    《Journal of Materials Science》 |2017年第20期|共12页
  • 作者单位

    Fed Univ Triangulo Mineiro UFTM Inst Exact Sci Nat &

    Educ BR-38064200 Uberaba MG Brazil;

    Fed Univ Triangulo Mineiro UFTM Inst Exact Sci Nat &

    Educ BR-38064200 Uberaba MG Brazil;

    Univ Fed Uberlandia Inst Phys Lab New Insulator &

    Semicond Mat LNMIS BR-38400902 Uberlandia MG Brazil;

    Univ Fed Uberlandia Inst Phys Lab New Insulator &

    Semicond Mat LNMIS BR-38400902 Uberlandia MG Brazil;

    FH Aachen INB Campus Julich D-52428 Julich Germany;

    Fed Univ Triangulo Mineiro UFTM Inst Exact Sci Nat &

    Educ BR-38064200 Uberaba MG Brazil;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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