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金-银纳米棒表面电荷的控制:在聚(4-苯乙烯磺酸钠)存在下对铁的选择性检测。

Control of the surface charges of Au-Ag nanorods: selective detection of iron in the presence of poly(sodium 4-styrenesulfonate).

作者信息

Huang Yu-Fen, Lin Yang-Wei, Chang Huan-Tsung

机构信息

Department of Chemistry, National Taiwan University, Taipei, Taiwan.

出版信息

Langmuir. 2007 Dec 4;23(25):12777-81. doi: 10.1021/la701668e. Epub 2007 Nov 1.

Abstract

In this article, we report a simple approach for selectively sensing Fe2+ ions using CTAB-stabilized Au-Ag nanorods (CTAB-Au-Ag NRs) in the presence of poly(sodium 4-styrenesulfonate) (PSS). The prepared CTAB-Au-Ag NRs exhibit an intense longitudinal surface plasmon resonance absorption (>10(9) M(-1) cm(-1) at 827 nm) in the near-infrared region. As a result of attractive electrostatic interactions between PSS and CTAB, agglomeration of the CTAB-Au-Ag NRs induces a change in the absorption at 827 nm. From zeta potential measurements, we found that the degree of agglomeration was highly dependent on the surface charge density of the CTAB-Au-Ag NRs. Because Fe2+ (Fe3+) ions selectively interact with PSS, the degree of agglomeration-and, thus, the change in absorption at 827 nm-is dependent on the concentration of Fe2+ (Fe3+) ions. To improve the selectivity of the present sensing system, Fe3+ ions were reduced to Fe2+ ions in the presence of ascorbic acid prior to analysis. The concentrations of CTAB-Au-Ag NRs and PSS are both important parameters in determining the sensitivity and selectivity of the present approach toward sensing Fe2+ ions. Under the optimum conditions [34 pM CTAB-Au-Ag NRs, (5 x 10(-6))% PSS, pH 7.2], the limit of detection for Fe2+ ions at a signal-to-noise ratio of 3 was 1.0 microM. We applied this nanosensor system to the determination of Fe2+ in ferritin and in aqueous environmental samples; this approach has the advantages of simplicity, accuracy, and precision (the relative standard deviation from five runs with each sample was below 3%).

摘要

在本文中,我们报道了一种简单的方法,即在存在聚(4-苯乙烯磺酸钠)(PSS)的情况下,使用十六烷基三甲基溴化铵(CTAB)稳定的金-银纳米棒(CTAB-Au-Ag NRs)选择性地传感Fe2+离子。制备的CTAB-Au-Ag NRs在近红外区域表现出强烈的纵向表面等离子体共振吸收(在827 nm处>10(9) M(-1) cm(-1))。由于PSS与CTAB之间存在有吸引力的静电相互作用,CTAB-Au-Ag NRs的团聚导致827 nm处的吸收发生变化。通过zeta电位测量,我们发现团聚程度高度依赖于CTAB-Au-Ag NRs的表面电荷密度。因为Fe2+(Fe3+)离子与PSS选择性相互作用,团聚程度——进而827 nm处的吸收变化——取决于Fe2+(Fe3+)离子的浓度。为了提高本传感系统的选择性,在分析之前,在抗坏血酸存在的情况下将Fe3+离子还原为Fe2+离子。CTAB-Au-Ag NRs和PSS的浓度都是决定本方法对传感Fe2+离子的灵敏度和选择性的重要参数。在最佳条件下[34 pM CTAB-Au-Ag NRs,(5×10(-6))% PSS,pH 7.2],在信噪比为3时Fe2+离子的检测限为1.0 microM。我们将此纳米传感器系统应用于铁蛋白和水性环境样品中Fe2+的测定;该方法具有简单、准确和精密的优点(每个样品五次运行的相对标准偏差低于3%)。

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