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Structural and thermal properties of pure and chromium doped zinc oxide nanoparticles
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Abstract
Pure ZnO and Cr-doped ZnO nanoparticles have been synthesized via a facile chemical co-precipitation route and their structural, thermal characteristics were discussed systematically. In the experimental producer, the doping concentration has varied the range, 0.05–0.1 M, while calcined at 600 °C. The influence of Cr-doping on the physical characteristics of ZnO nanoparticles was investigated and addressed. As-prepared samples were analyzed via XRD, FTIR, TGA/DTA, BET, and ICP-MS. XRD analysis shows that ZnO and Cr doped ZnO nanoparticles with average particle sizes between 23 and 39 nm were successfully developed with hexagonal wurtzite structure. The FTIR spectroscopy analysis confirms the existence of chromium in the doped ZnO nanoparticles and the formation of ZnO. The TGA/DTA analysis shows that Cr–ZnO nanoparticles are more thermally stable than ZnO nanoparticles. Moreover, the dopant concentration has been analyzed via ICP-MS and showed a good agreement with the expected chromium concentration. The BET surface area measurement shows that 176.25 m2/g and 287.17 m2/g for un-doped ZnO, and 0.1 M Cr-doped ZnO nanoparticles, respectively. Hence, doping of Cr enhances the surface area and thermal stability. Thus, Cr–ZnO nanoparticles show good thermal stability, and high surface area, which is an excellent characteristices of nanomaterials.
Graphic abstract
Springer Science and Business Media LLC
Title: Structural and thermal properties of pure and chromium doped zinc oxide nanoparticles
Description:
Abstract
Pure ZnO and Cr-doped ZnO nanoparticles have been synthesized via a facile chemical co-precipitation route and their structural, thermal characteristics were discussed systematically.
In the experimental producer, the doping concentration has varied the range, 0.
05–0.
1 M, while calcined at 600 °C.
The influence of Cr-doping on the physical characteristics of ZnO nanoparticles was investigated and addressed.
As-prepared samples were analyzed via XRD, FTIR, TGA/DTA, BET, and ICP-MS.
XRD analysis shows that ZnO and Cr doped ZnO nanoparticles with average particle sizes between 23 and 39 nm were successfully developed with hexagonal wurtzite structure.
The FTIR spectroscopy analysis confirms the existence of chromium in the doped ZnO nanoparticles and the formation of ZnO.
The TGA/DTA analysis shows that Cr–ZnO nanoparticles are more thermally stable than ZnO nanoparticles.
Moreover, the dopant concentration has been analyzed via ICP-MS and showed a good agreement with the expected chromium concentration.
The BET surface area measurement shows that 176.
25 m2/g and 287.
17 m2/g for un-doped ZnO, and 0.
1 M Cr-doped ZnO nanoparticles, respectively.
Hence, doping of Cr enhances the surface area and thermal stability.
Thus, Cr–ZnO nanoparticles show good thermal stability, and high surface area, which is an excellent characteristices of nanomaterials.
Graphic abstract.
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