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Synthesis of Redox Polymer Nanobeads and Nanocomposites for Glucose Biosensors

机译:葡萄糖生物传感器的氧化还原聚合物纳米珠和纳米复合材料的合成。

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Redox polymer nanobeads of branched poly-ethylenimine binding with ferrocene (BPEI-Fc) were synthesized using a simple chemical process. The functionality and morphology of the redox polymer nanobeads were investigated by Fourier transform infrared spectroscopy (FTIR) and transmission electron microscopy (TEM). This hydrophilic redox nanomaterial could be mixed with glucose oxidase (GOx) for drop-coating on a screen-printed carbon electrode (SPCE) for glucose sensing application. Electrochemical properties of the BPEI-Fc/GOx/SPCE prepared under different conditions were studied by cyclic voltammetry (CV). On the basis of these CV results, the synthetic condition of the BPEI-Fc/GOx/SPCE could be optimized. By incorporating conductive poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS), the performance of a redox polymer nanobead—based enzyme electrode could be further improved. The influence of PEDOT:PSS on the nanocomposite enzyme electrode was discussed from the aspects of the apparent electron diffusion coefficient (D_(app)) and the charge transfer resistance (R_(ct)). The glucose-sensing sensitivity of the BPEI-Fc/PEDOT:PSS/GOx/SPCE is calculated to be 66 μ A mM~(-1) cm~(-2), which is 2.5 times higher than that without PEDOT:PSS. The apparent Michaelis constant (K_M~(app)) of the BPEI-Fc/PEDOT:PSS/ GOx/SPCE estimated by the Lineweaver-Burk plot is 2.4 mM, which is much lower than that of BPEI-Fc/GOx/SPCE (11.2 mM). This implies that the BPEI-Fc/PEDOT:PSS/GOx/SPCE can catalytically oxidize glucose in a more efficient way. The interference test was carried out by injection of glucose and three common interferences: ascorbic acid (AA), dopamine (DA), and uric acid (UA) at physiological levels. The interferences of DA (4.2%) and AA (7.8%) are acceptable and the current response to UA (1.696) is negligible, conlpared to the current response to glucose.
机译:使用简单的化学方法合成了支链聚亚乙基亚胺与二茂铁结合的氧化还原聚合物纳米珠(BPEI-Fc)。通过傅立叶变换红外光谱(FTIR)和透射电子显微镜(TEM)研究了氧化还原聚合物纳米珠的功能和形态。可以将该亲水性氧化还原纳米材料与葡萄糖氧化酶(GOx)混合,以滴涂在丝网印刷碳电极(SPCE)上,用于葡萄糖传感应用。通过循环伏安法(CV)研究了在不同条件下制备的BPEI-Fc / GOx / SPCE的电化学性能。根据这些CV结果,可以优化BPEI-Fc / GOx / SPCE的合成条件。通过掺入导电的聚(3,4-乙撑二氧噻吩):聚(苯乙烯磺酸盐)(PEDOT:PSS),可以进一步提高基于氧化还原聚合物纳米珠的酶电极的性能。从表观电子扩散系数(D_(app))和电荷转移电阻(R_(ct))的角度讨论了PEDOT:PSS对纳米复合酶电极的影响。 BPEI-Fc / PEDOT:PSS / GOx / SPCE的葡萄糖敏感度经计算为66μA mM〜(-1)cm〜(-2),是不使用PEDOT:PSS时的2.5倍。由Lineweaver-Burk图估算的BPEI-Fc / PEDOT:PSS / GOx / SPCE的表观米氏常数(K_M〜(app))为2.4 mM,远低于BPEI-Fc / GOx / SPCE的( 11.2 mM)。这意味着BPEI-Fc / PEDOT:PSS / GOx / SPCE可以更有效的方式催化氧化葡萄糖。干扰试验通过注射葡萄糖和三种常见干扰物进行:生理水平的抗坏血酸(AA),多巴胺(DA)和尿酸(UA)。 DA(4.2%)和AA(7.8%)的干扰是可以接受的,与UA的当前响应相比,对UA(1.696)的当前响应可以忽略不计。

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