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首页> 外文期刊>Journal of nanoscience and nanotechnology >A Selective Potentiometric Copper (II) Ion Sensor Based on the Functionalized ZnO Nanorods
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A Selective Potentiometric Copper (II) Ion Sensor Based on the Functionalized ZnO Nanorods

机译:基于功能化ZnO纳米棒的选择性电位铜离子传感器

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摘要

In this work, ZnO nanorods were hydrothermally grown on the gold-coated glass substrate and characterized by field emission scanning electron microscopy (FESEM) and X-ray diffraction (XRD) techniques. The ZnO nanorods were functionalized by two different approaches and performance of the sensor electrode was monitored. Fourier transform infrared spectroscopy (FTIR) was carried out for the confirmation of interaction between the ionophore molecules and ZnO nanorods. In addition to this, the surface of the electrode was characterized by X-ray photoelectron spectroscopy (XPS) showing the chemical and electronic state of the ionophore and ZnO nanorod components. The ionophore solution was prepared in the stabilizer, poly vinyl chloride (PVC) and additives, and then functionalized on the ZnO nanorods that have shown the Nernstian response with the slope of 31 mV/decade. However, the Cu~(2+) ion sensor was fabricated only by immobilizing the selective copper ion ionophore membrane without the use of PVC, plasticizers, additives and stabilizers and the sensor electrode showed a linear potentiometric response with a slope of 56.4 mV/decade within a large dynamic concentration range (from 1.0 × 10~(-6) to 1.0 × 10~(-1) M) of copper (II) nitrate solutions. The sensor showed excellent repeatability and reproducibility with response time of less than 10 s. The negligible response to potentially interfering metal ions such as calcium (Ca~(2+)), magnesium (Mg~(2+)), potassium (K~+), iron (Fe~(3+)), zinc (Zn~(2+)), and sodium (Na~+) allows this sensor to be used in biological studies. It may also be used as an indicator electrode in the potentiometric titration.
机译:在这项工作中,ZnO纳米棒在镀金玻璃基板上水热生长,并通过场发射扫描电子显微镜(FESEM)和X射线衍射(XRD)技术进行了表征。 ZnO纳米棒通过两种不同的方法进行功能化,并监测传感器电极的性能。进行了傅里叶变换红外光谱(FTIR),以确认离子载体分子与ZnO纳米棒之间的相互作用。除此之外,还通过X射线光电子能谱(XPS)对电极的表面进行了表征,显示了离子载体和ZnO纳米棒成分的化学和电子状态。在稳定剂,聚氯乙烯(PVC)和添加剂中制备离子载体溶液,然后在ZnO纳米棒上官能化,该纳米棒以31 mV /十年的斜率显示出Nernstian响应。但是,Cu〜(2+)离子传感器仅通过固定选择性铜离子离子膜而无需使用PVC,增塑剂,添加剂和稳定剂制成,并且传感器电极表现出线性电位响应,斜率为56.4 mV /十倍。在较大的动态浓度范围(1.0×10〜(-6)至1.0×10〜(-1)M)的硝酸铜(II)溶液中。该传感器具有出色的可重复性和可重复性,响应时间少于10 s。对潜在干扰金属离子如钙(Ca〜(2+)),镁(Mg〜(2+)),钾(K〜+),铁(Fe〜(3+)),锌(Zn)的响应可忽略不计〜(2+))和钠(Na〜+)允许此传感器用于生物学研究。它也可以用作电位滴定中的指示电极。

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