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Highly selective and stable glucose biosensor based on incorporation of platinum nanoparticles into polyaniline-montmorillonite hybrid composites

机译:基于铂纳米粒子掺入聚苯胺 - 蒙脱石杂交复合材料的高度选择性和稳定的葡萄糖生物传感器

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摘要

The selectivity and stability of biosensor are still challenging goal. Herein, a glucose biosensor was developed by anchoring glucose oxidase (GOD) within the polyaniline (PANI)-montmorillonite (MMT)-platinum nanoparticles (PtNPs) nanocomposite through the electrodeposition of PtNPs on the PANI-MMT hybrid composites, which had been prepared on the surface of platinum plate electrode by in situ electrochemical suspension polymerization. Scanning electron spectroscopy (SEM), cyclic voltammetry (CV), electrochemical impedance spectroscopy (EIS) and amperometry measurements were employed to characterize the morphology and electrochemical properties of the as-prepared biosensor. No current response was monitored from the possible interferents such as glycine (Gly), urea (Urea), L-phenylalanine (L-Phe), ascorbic acid (AA), L-tyrosine (L-Tyr) and D-galactose (D-Gal). The signal intensity towards glucose detection kept almost no change after storage for 40 days, and still remained above 91.7% of original value even after two months. The developed biosensor revealed a quick response to glucose over a wide linear range from 10 mu M to 1.94 mM and a low detection limit of 0.1 mu M. The biosensor was successfully applied for glucose detection in human blood serum. The results demonstrate the possible control of nanocomposite microenvironment by using electrochemical synthesis to obtain molecular level dispersion for immobilizing glucose oxidase, and enhance electron transfer and electrocatalytic effect.
机译:生物传感器的选择性和稳定性仍然具有挑战性的目标。在此,通过在已经准备的PANI-MMT混合复合材料上通过PTNPS的电沉积来锚固在聚苯胺(PANI)-MONTMORILLILLITH(MMT)-PLATINUM纳米粒子(PTNP)纳米颗粒(PTNP)纳米颗粒中的葡萄糖氧化酶(MMT)纳米粒子(PTNPS)纳米粒子的沉淀物体来开发葡萄糖生物传感器。通过原位电化学悬浮聚合,铂板电极的表面。扫描电子光谱(SEM),循环伏安法(CV),电化学阻抗光谱(EIS)和安培测量测量以表征如制备的生物传感器的形态和电化学性质。没有从可能的干扰(如甘氨酸(GLY),尿素(尿素),L-苯丙氨酸(L-PHE),抗坏血酸(AA),L-酪氨酸(L-TYR)和D-半乳糖(D- -gal)。葡萄糖检测的信号强度在储存后几乎没有变化40天,即使在两个月后,仍然仍保持在原始值的91.7%以上。发育的生物传感器揭示了在宽线性范围内的葡萄糖的快速反应,从10μm至1.94mm,低检测限为0.1μm。生物传感器已成功应用于人血清中的葡萄糖检测。结果证明了通过使用电化学合成获得纳米复合微环境的控制,得到用于固定葡萄糖氧化酶的分子水平分散,提高电子转移和电催化效应。

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