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Electrochemical nanostructured biosensors: carbon nanotubes versus conductive and semi-conductive nanoparticles

机译:电化学纳米结构生物传感器:碳纳米管与导电和半导电纳米颗粒的比较

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The aim of this work was to demonstrate that various types of nanostructures provide different gains in terms of sensitivity or detection limit albeit providing the same gain in terms of increased area. Commercial screen printed electrodes (SPEs) were functionalized with 100 mu g of bismuth oxide nanoparticles (Bi2O3 NPs), 13.5 mu g of gold nanoparticles (Au NPs), and 4.8 mu g of multi-wall carbon nanotubes (MWCNTs) to sense hydrogen peroxide (H2O2). The amount of nanomaterials to deposit was calculated using specific surface area (SSA) in order to equalize the additional electroactive surface area. Cyclic voltammetry (CV) experiments revealed oxidation peaks of Bi2O3 NPs, Au NPs, and MWCNTs based electrodes at (790 +/- 1) mV, (386 +/- 1) mV, and (589 +/- 1) mV, respectively, and sensitivities evaluated by chronoamperometry (CA) were (74 +/- 12) mu A mM(-1) cm(-2), (129 +/- 15) mu A mM(-1) cm(-2), and (54 +/- 2) mu A mM(-1) cm(-2), respectively. Electrodes functionalized with Au NPs showed better sensing performance and lower redox potential (oxidative peak position) compared with the other two types of nanostructured SPEs. Interestingly, the average size of the tested Au NPs was 4 nm, under the limit of 10 nm where the quantum effects are dominant. The limit of detection (LOD) was (11.1 +/- 2.8) mu M, (8.0 +/- 2.4) mu M, and (3.4 +/- 0.1) mu M for Bi2O3 NPs, Au NPs, and for MWCNTs based electrodes, respectively. (C) 2014 Institute of Chemistry, Slovak Academy of Sciences
机译:这项工作的目的是证明各种类型的纳米结构在灵敏度或检测限方面提供不同的增益,尽管在增加面积方面提供相同的增益。商用丝网印刷电极(SPE)用100μg氧化铋纳米颗粒(Bi2O3 NPs),13.5μg金纳米颗粒(Au NPs)和4.8μg多壁碳纳米管(MWCNT)进行功能化(H2O2)。为了使附加的电活性表面积相等,使用比表面积(SSA)计算了要沉积的纳米材料的量。循环伏安法(CV)实验显示Bi2O3 NPs,Au NPs和MWCNTs电极的氧化峰分别为(790 +/- 1)mV,(386 +/- 1)mV和(589 +/- 1)mV ,并通过计时电流法(CA)评估的灵敏度为(74 +/- 12)mu A mM(-1)cm(-2),(129 +/- 15)mu A mM(-1)cm(-2),和(54 +/- 2)μA mM(-1)cm(-2)。与其他两种类型的纳米结构SPE相比,用Au NPs功能化的电极显示出更好的感测性能和更低的氧化还原电势(氧化峰位置)。有趣的是,测试的金纳米粒子的平均大小为4 nm,在量子效应占主导的10 nm的限制下。对于Bi2O3 NP,Au NPs和基于MWCNTs的电极,检测限(LOD)为(11.1 +/- 2.8)μM,(8.0 +/- 2.4)μM和(3.4 +/- 0.1)μM , 分别。 (C)2014年,斯洛伐克科学院化学研究所

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