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Step-by-step electrodeposition of a high-performance Prussian blue-gold nanocomposite for H2O2 sensing and glucose biosensing

机译:高性能普鲁士蓝金纳米复合材料的分步电沉积,用于H2O2传感和葡萄糖生物传感

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摘要

A Prussian blue (PB)-gold nanocomposite ((PB-Au)(x), where x denotes the number of PB-Au bilayer) is prepared, by step-by-step electrodeposition of PB and gold on a glassy carbon electrode (GCE). The optimized (PB-Au)(2)/GCE exhibits excellent electrocatalytic activity for electroreduction of H2O2, and the cathodic current at -0.05 V responds linearly to H2O2 concentration up to 3.88 mM with a sensitivity of 1.32 mA mM(-1) cm(-2), which outperforms the gold-PB nanocomposites electrodeposited through other reported protocols. Moreover, a glucose oxidase (GOx)-polydopamine (PDA)-Pt nanoparticles (PtNPs) bionanocomposite is synthesized through chemical oxidation of dopamine by sodium chloroplatinate in the presence of GOx. A chitosan (CS)/GOx-PDA-PtNPs/(PB-Au)(2)/GCE is fabricated by casting GOx-PDA-PtNPs and then CS on (PB-Au)(2)/GCE. The cathodic current at 0.05 V on this enzyme electrode responds linearly to glucose concentration from 5 mu M to 0.79 mM with a sensitivity of 114 mu A mM(-1) cm(-2) and a LOD of 0.5 mu M (S/N = 3). The presented protocol can flexibly balance the high catalytic activity and the poor electron-conductance of PB for improving the electroactivity and electrocatalytic activity of PB-based films, thus yielding high-performance PB-based electrodes for low-potential determination of H2O2 and glucose. (C) 2016 Elsevier B.V. All rights reserved.
机译:通过在玻璃碳电极上分步电沉积PB和金,制备出普鲁士蓝(PB)-金纳米复合材料((PB-Au)(x),其中x表示PB-Au双层数)。 GCE)。优化的(PB-Au)(2)/ GCE对H2O2的电还原表现出出色的电催化活性,并且-0.05 V的阴极电流对高达3.88 mM的H2O2浓度线性响应,灵敏度为1.32 mA mM(-1)cm (-2),其性能优于通过其他报道的协议电沉积的金-PB纳米复合材料。此外,葡萄糖氧化酶(GOx)-聚多巴胺(PDA)-Pt纳米粒子(PtNPs)的生物纳米复合材料是在GOx存在下,通过氯铂酸钠对多巴胺进行化学氧化而合成的。壳聚糖(CS)/ GOx-PDA-PtNPs /(PB-Au)(2)/ GCE的制造方法是先铸造GOx-PDA-PtNPs,然后在(PB-Au)(2)/ GCE上浇铸CS。该酶电极上0.05 V的阴极电流对葡萄糖浓度从5μM到0.79 mM线性响应,灵敏度为114μA mM(-1)cm(-2),LOD为0.5μM(S / N = 3)。提出的协议可以灵活地平衡PB的高催化活性和不良的电子电导率,从而改善PB基膜的电活性和电催化活性,从而产生高性能的PB基电极,用于低电位测定H2O2和葡萄糖。 (C)2016 Elsevier B.V.保留所有权利。

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