| Literature DB >> 23202217 |
Mazhar Ali Abbasi1, Zafar Hussain Ibupoto, Mushtaque Hussain, Yaqoob Khan, Azam Khan, Omer Nur, Magnus Willander.
Abstract
In this study honeycomb-like NiO nanostructures were grown on nickel foam by a simple hydrothermal growth method. The NiO nanostructures were characterized by field emission electron microscopy (FESEM), high resolution transmission electron microscopy (HRTEM) and X-ray diffraction (XRD) techniques. The characterized NiO nanostructures were uniform, dense and polycrystalline in the crystal phase. In addition to this, the NiO nanostructures were used in the development of a zinc ion sensor electrode by functionalization with the highly selective zinc ion ionophore 12-crown-4. The developed zinc ion sensor electrode has shown a good linear potentiometric response for a wide range of zinc ion concentrations, ranging from 0.001 mM to 100 mM, with sensitivity of 36 mV/decade. The detection limit of the present zinc ion sensor was found to be 0.0005 mM and it also displays a fast response time of less than 10 s. The proposed zinc ion sensor electrode has also shown good reproducibility, repeatability, storage stability and selectivity. The zinc ion sensor based on the functionalized NiO nanostructures was also used as indicator electrode in potentiometric titrations and it has demonstrated an acceptable stoichiometric relationship for the determination of zinc ion in unknown samples. The NiO nanostructures-based zinc ion sensor has potential for analysing zinc ion in various industrial, clinical and other real samples.Entities:
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Year: 2012 PMID: 23202217 PMCID: PMC3522970 DOI: 10.3390/s121115424
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1.(a–d) FESEM images of honeycomb-like NiO nanostructures at different magnifications.
Figure 2.(a–c) TEM images of NiO nanostructures.
Figure 3.XRD pattern study of the NiO nanostructures.
Figure 4.Calibration graph of zinc ion sensor from 0.0005–100 mM zinc nitrate concentrations.
Figure 5.Repeatability of zinc ion sensor for 0.0005–100 mM zinc nitrate concentrations.
Figure 6.Reproducibility of zinc ion sensor in 0.1 mM solution of zinc nitrate.
Calculated selectivity values for different interferents.
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| K+1 | 2.40 | −4.34 |
| Co+2 | 4.30 | −3.70 |
| Mg+2 | 5.2 | −4.71 |
| Fe+3 | 7.6 | −3.05 |
| Na+1 | 7.5 | −4.70 |
| Ni+2 | 8.1 | −4.72 |
| Cu+2 | 3.6 | −2.65 |
Figure 7.(a) Influence of temperature of the output response of zinc ion sensor. (b) Study of response time. (c) Potentiometric titration curve in 10 mM zinc nitrate solution.
The comprative study of present zinc ion sensor with the reported zinc ion sensors.
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| 0.006–100 mM | 29.0 | 12 | [ | |
| 0.01–100 mM | 35.0 | 5 | [ | |
| 0.013–100 mM | 30.0 | 10 | [ | |
| 0.5–100 mM | 33.0 | 20–25 | [ | |
| 0.005–100 mM | 29.7 | 8 | [ | |
| 0.001–100 mM | 36.0 | Less than 10 | this work | |