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Transforming the Fabrication and Biofunctionalization of Gold Nanoelectrode Arrays into Versatile Electrochemical Glucose Biosensors

机译:将金纳米电极阵列的制备和生物功能化转化为多功能电化学葡萄糖生物传感器

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High-density arrays of conducting nanoelectrodes (i.e., nanoelectrode arrays [NEAs]) have been developed on the surface of a single electrode for numerous electrochemical sensing paradigms. However, a scalable fabrication technique and robust biofunctionalization protocol are oftentimes lacking and thus many NEA designs have limited efficacy and overall commercial viability in biosensing applications. In this report, we develop a lithography-free nanofabrication protocol to create large arrays of Au nanoelectrodes on a silicon wafer via a porous anodic alumina template. To demonstrate their effectiveness as electrochemical glucose biosensors, alkanethiol self-assembled monolayers (SAMs) are used to covalently attach the enzyme glucose oxidase to the Au NEA surface for subsequent glucose sensing. The sensitivity and linear sensing range of the biosensor is controlled by introducing higher concentrations of long-chain SAMs (11-mercaptoundecanoic acid: MUA) with short-chain SAMs (3-mercaptopropionic acid: MPA) into the enzyme immobilization scheme. This facile NEA fabrication protocol (that is well-suited for integration into electronic devices) and biosensor performance controllability (via the mixed-length enzyme-conjugated SAMs) transforms the Au NEAs into versatile glucose biosensors. Thus these Au NEAs could potentially be used in important real-word applications such as in health-care and bioenergy where biosensors with very distinct sensing capabilities are needed.
机译:导电纳米电极的高密度阵列(即,纳米电极阵列[NEA])已在单个电极的表面上开发出来,用于许多电化学传感范例。但是,通常缺乏可扩展的制造技术和强大的生物功能化协议,因此许多NEA设计在生物传感应用中的功效和总体商业可行性有限。在本报告中,我们开发了一种无需光刻的纳米加工方案,可通过多孔阳极氧化铝模板在硅片上创建大尺寸的Au纳米电极阵列。为了证明其作为电化学葡萄糖生物传感器的有效性,使用链烷硫醇自组装单层(SAMs)将葡萄糖氧化酶共价连接到Au NEA表面,以进行后续葡萄糖感测。通过将较高浓度的长链SAM(11-巯基癸酸:MUA)和短链SAM(3-巯基丙酸:MPA)引入酶固定方案,可以控制生物传感器的灵敏度和线性感应范围。这种简便的NEA制造协议(非常适合集成到电子设备中)和生物传感器的性能可控性(通过混合长度的酶缀合SAM)将Au NEA转变为通用的葡萄糖生物传感器。因此,这些Au NEA可以潜在地用于重要的实词应用中,例如在医疗保健和生物能源领域,这些领域需要具有非常不同的传感功能的生物传感器。

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