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Development of bimetal-grown multi-scale carbon micro-nanofibers as an immobilizing matrix for enzymes in biosensor applications

机译:开发双金属生长的多尺度碳微纳米纤维作为生物传感器应用中酶的固定基质

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摘要

This study describes the development of a novel bimetal (Fe and Cu)-grown hierarchical web of carbon micro-nanofiber-based electrode for biosensor applications, in particular to detect glucose in liquids. Carbon nanofibers (CNFs) are grown on activated carbon microfibers (ACFs) by chemical vapor deposition (CVD) using Cu and Fe as the metal catalysts. The transition metal-fiber composite is used as the working electrode of a biosensor applied to detect glucose in liquids. In such a bi-nanometal-grown multi-scale web of ACF/CNF, Cu nanoparticles adhere to the ACF-surface, whereas Fe nanoparticles used to catalyze the growth of nanofibers attach to the CNF tips. By ultrasonication, Fe nanoparticles are dislodged from the tips of the CNFs. Glucose oxidase (GOx) is subsequently immobilized on the tips by adsorption. The dispersion of Cu nanoparticles at the substrate surface results in increased conductivity, facilitating electron transfer from the glucose solution to the ACF surface during the enzymatic reaction with glucose. The prepared Cu-ACF/ CNF/GOx electrode is characterized for various surface and physicochemical properties by different analytical techniques, including scanning electron microscopy (SEM), electron dispersive X-ray analysis (EDX), Fourier-transform infrared spectroscopy (FTIR), BET surface area analysis, and transmission electron microscopy (TEM). The electrochemical tests show that the prepared electrode has fast response current, electrochemical stability, and high electron transfer rate, corroborated by CV and calibration curves. The prepared transition metal-based carbon electrode in this study is cost-effective, simple to develop, and has a stable immobilization matrix for enzymes.
机译:这项研究描述了一种新型的双金属(Fe和Cu)生长的碳微纳米纤维基电极的分层网的开发,用于生物传感器应用,尤其是用于检测液体中的葡萄糖。碳纳米纤维(CNF)使用铜和铁作为金属催化剂,通过化学气相沉积(CVD)在活性炭微纤维(ACF)上生长。过渡金属纤维复合材料用作生物传感器的工作电极,该传感器用于检测液体中的葡萄糖。在这种双纳米金属生长的ACF / CNF多尺度纤维网中,Cu纳米颗粒附着在ACF表面,而用于催化纳米纤维生长的Fe纳米颗粒附着在CNF尖端上。通过超声处理,Fe纳米颗粒从CNF的尖端脱落。葡萄糖氧化酶(GOx)随后通过吸附固定在针尖上。 Cu纳米颗粒在基底表面的分散导致电导率增加,在与葡萄糖的酶促反应过程中促进电子从葡萄糖溶液转移到ACF表面。制备的Cu-ACF / CNF / GOx电极通过不同的分析技术表征各种表面和理化性质,包括扫描电子显微镜(SEM),电子色散X射线分析(EDX),傅里叶变换红外光谱(FTIR), BET表面积分析和透射电子显微镜(TEM)。电化学测试表明,所制备的电极响应速度快,电化学稳定性好,电子传输速率高,这已通过CV和校准曲线得到证实。本研究中制备的过渡金属基碳电极成本效益高,易于开发,并且具有稳定的酶固定基质。

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