A Comparative Study of Zinc Oxide Nano Particles Synthesized by Hydrothermal, Sol-gel and Thermal Decomposition

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Year : September 20, 2023 | Volume : 11 | Issue : 07 | Page : –

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    Nudrat Jahan

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Abstract

nIn the proposed work, Zinc oxide nano particles (ZnO NP’s) are synthesized using three different methods: Hydrothermal, Sol-gel and Thermal decomposition. The samples are characterized using X- ray diffraction (XRD), UV visible spectroscopy (UV-Vis), Fourier Transform Infrared Spectroscopy (FT-IR) and scanning electron microscopy (SEM). The XRD pattern exhibit single-phase polycrystalline nature of all the samples exhibiting the most intense peak at (101). The diffraction peaks are located at 31.80, 34.46, 36.28, 47.60, 56.62, 62.98, 68.04, 69.16 and 77.00 and have been keenly indexed as hexagonal wurtzite phase of ZnO. The FT-IR Spectra of ZnO NP’s is recorded in the wave number range from 400 to 4000 cm-1. In UV visible Spectra of ZnO absorption edge for sol- gel is around 345 nm, 360 nm for hydrothermal and shifted to 376 nm for thermal decomposition, which shows the increase in crystalline size. The energy band gap of materials is calculated using a well-known Tauc’s plot from which the values Eg for all the three samples are for sol-gel Eg = 2.78 eV, thermal decomposition Eg = 2.90 eV and hydrothermal Eg = 3.20 eV. SEM images exhibit the formation of large spherical Nano particles for sol-gel method, Wurtzite structure for thermal decomposition and Nano rods in hydrothermally synthesized ZnO sample.

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Keywords: Zinc oxide, Nano particles, Hydrothermal, Sol-gel, Thermal decomposition

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How to cite this article: Nudrat Jahan A Comparative Study of Zinc Oxide Nano Particles Synthesized by Hydrothermal, Sol-gel and Thermal Decomposition jopc September 20, 2023; 11:-

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How to cite this URL: Nudrat Jahan A Comparative Study of Zinc Oxide Nano Particles Synthesized by Hydrothermal, Sol-gel and Thermal Decomposition jopc September 20, 2023 {cited September 20, 2023};11:-. Available from: https://journals.stmjournals.com/jopc/article=September 20, 2023/view=0/

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References

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1.
M. Anbuvannan, M. Ramesh, G. Viruthagiri, N. Shanmugam, N. Kannadasan, Synthesis, characterization and photocatalytic activity of ZnO nanoparticles prepared by biological method, Spectrochim. Acta A Mol. Biomol. Spectroscopy 143 (2015) 304–308, doi:10.1016/j.saa.2015.01.124.
2.
M. Sundrarajan, S. Ambika, K. Bharathi, Plant-extract mediated synthesis of ZnO nanoparticles using Pongamia pinnata and their activity against pathogenic bacteria, Adv. Powder Technol 26 (2015) 1294–1299, doi:10.1016/ j.apt.2015.07.001.
3.
P. Vanathi, P. Rajiv, S. Narendhran, S. Rajeshwari, P.K.S.M. Rahman, Biosynthesis and characterization of phyto mediated zinc oxide nanoparticles: a green chemistry approach, Mater. Lett 134 (2014) 13–15, doi:10.1016/j.matlet.2014.07.029.
4.
K. Prasad, A.K. Jha, ZnO nanoparticles: synthesis and adsorption study, Nat. Sci 1 (2009) 129– 135, doi:10.4236/ns.2009.12016.
5.
Jinhuan Jiang, Jiang Pi, Jiye Cai, “The Advancing of Zinc Oxide Nanoparticles for Biomedical Applications”, Bioinorganic Chemistry and Applications, vol. 2018, Article ID 1062562, 18 pages, 2018. https://doi.org/10.1155/2018/1062562
6.
K. Mishra, H. Mishra, A. Ekielski, S. Talegaonkar, and B. Vaidya, “Zinc oxide nanoparticles: a promising nanomaterial for biomedical applications,” Drug Discovery Today, vol. 22, no. 12, pp. 1825–1834, 2017.
7.
T. G. Smijs and S. Pavel, “Titanium dioxide and zinc oxide nanoparticles in sunscreens: focus on their safety and effectiveness,” Nanotechnology, Science and Applications, vol. 4, pp. 95–112, 2011.
8.
J. A. Ruszkiewicz, A. Pinkas, B. Ferrer, T. V. Peres, A. Tsatsakis, and M. Aschner, “Neurotoxic effect of active ingredients in sunscreen products, a contemporary review,” Toxicology Reports, vol. 4, pp. 245–259, 2017.
9.
A. Hatamie, A. Khan, M. Golabi et al., “Zinc oxide nanostructure-modified textile and its application to bio-sensing, photocatalysis, and as antibacterialmaterial,”vol.31, no.39, pp 10913– 10921,2015

10.
A. Kolodziejczak-Radzimska and T. Jesionowski, “Zinc oxide–from synthesis to application: a review,” Materials, vol. 7, no. 4, pp. 2833–2881, 2014.
11.
J. Pulit-prociak, J. Chwastowski, A. Kucharski, M. Banach, Applied surface science functionalization of textiles with silver and zinc oxide nanoparticles, Appl. Surf. Sci 385 (2016) 543–553, doi:10.1016/j.apsusc.2016.05.167.
12.
B.N. Patil, T.C. Taranath, Limonia acidissima L. leaf mediated synthesis of zinc oxide nanoparticles: a potent tool against mycobacterium tuberculosis, Int. J. Mycobacteriology 5 (2016) 197–204, doi:10.1016/j.ijmyco.2016.03.004.
13.
F. Lu, W. Cai, and Y. Zhang, “ZnO hierarchical micro/nanoarchitectures: solvothermal synthesis and structurally enhanced photocatalytic performance,” Advanced Functional Materials, vol. 18, no. 7, pp. 1047–1056, 2008.
14.
J. Zhou, N. Xu, and Z. L. Wang, “Dissolving behavior and stability of ZnO wires in biofluids: a study on biodegradability and biocompatibility of ZnO nanostructures,” Advanced Materials, vol. 18, no. 18, pp. 2432–2435, 2006.
15.
Raza, A. (2022). Phoenix dactylifera mediated green synthesis of Mn doped ZnO nanoparticles and its adsorption performance for methyl orange dye removal: A comparative study. Material Chemistry and Physics, 286(2022). https://doi.org/10.1016/j.matchemphys.2022.126173
16.
S. Ashoka, G. Nagaraju, C. N. Tharamani, and G. T. Chandrappa, “Ethylene glycol assisted hydrothermal synthesis of fl ower like ZnO architectures,” vol. 63, pp. 873–876, 2009.
17.
R. Elilarassi and G. Chandrasekaran, “Structural, optical and magnetic properties of nanoparticles of ZnO : Ni — DMS prepared by sol – gel method,” Mater. Chem. Phys., vol. 123, no. 2–3, pp. 450–455, 2010.
18.
D. B. Bharti, “Synthesis of ZnO nanoparticles using a hydrothermal method and a study its optical activity,” no. June 2016, pp. 317–320, 2017
19.
Abushad, Mohd & Hassan, Zishan & Naseem, Swaleha & Husain, Shahid & Khan, Wasi. (2020). A comparative study of ZnO nanostructures synthesized via sol-gel and hydrothermal processes. AIP Conference Proceedings. 2265. 10.1063/5.0017057.

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Special Issue Open Access Original Research

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Journal of Polymer and Composites

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[if 344 not_equal=””]ISSN: 2321–2810[/if 344]

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Volume 11
Issue 07
Received August 21, 2023
Accepted September 11, 2023
Published September 20, 2023

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