Open Access

Synthesis and Characterization of Pure and Copper-doped HAp Nanoparticles by Microwave Irradiation Method

K. Mohanapriya, mohanapriya98k@gmail.com
Department of Physics, Navarasam Arts and Science College for Women, Erode, TN, India
N. Vidhya, Department of Physics, Navarasam Arts and Science College for Women, Erode, TN, India V. Kalaiselvi, Department of Physics, Navarasam Arts and Science College for Women, Erode, TN, India K. Surya, Department of Physics, Navarasam Arts and Science College for Women, Erode, TN, India V. Ramya Department of Physics, Navarasam Arts and Science College for Women, Erode, TN, India


J. Environ. Nanotechnol., Volume 9, No 3 (2020) pp. 01-06

https://doi.org/10.13074/jent.2020.09.203412

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Abstract

Hydroxyapatite (HAp) is a nano biomaterial incorporated as bone and teeth implants in the human body. In the present work, HAp was prepared using calcium hydroxide as a calcium source and orthophosphoric acid as a phosphorous source by chemical co-precipitation method associated with microwave irradiation method. Pure and copper-doped HAp nanoparticles were synthesized by chemical co-precipitation method associated with microwave irradiation method. The prepared copper-doped HAp was characterized by XRD, FTIR, SEM, EDAX, UV and PL techniques.  The X-ray Diffraction (XRD) pattern had revealed the crystalline size of the nanoparticles.  The Fourier Transform Infrared Spectroscopy (FTIR) pattern had given the functional groups.  Morphology and purity of the sample were analyzed by Scanning Electron Microscopy (SEM) and Energy Dispersion X-ray Diffraction (EDAX). The optical properties were ascertained by using Ultra-Violet spectroscopy (UV) and Photo Luminance spectroscopy (PL). The results obtained matched well with the standard values.

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Reference


Anna Pratima Nikalje, Nanotechnology and its applications in medicine, Med. Chem., 5(2), 081- 089(2015).

https://doi.org/10.4172/2161-0444.1000247

Gonzalez-McQuire, R., Chane-Ching, J. Y., Vignaud, E., Lebugle, A. and Mann, S., Synthesis and characterization of amino acid-functionalized hydroxyapatite nanorods, J. Mater. Chem., 14(14), 2277-2281(2014).

https://doi.org/10.1039/B400317A

Kalaiselvi, V. and R. Mathammal, Effect of Titanium Dioxide Doping on Nano Hydroxyapatite synthesised from egg shells via wet chemical Method, Int. J. Mag. Eng. Technol. Manag. Res., 3(8), 133-138(2016).

Kalaiselvi, V., Mathammal, R., Vijayakumar, S. and Vaseeharan, B., Microwave-assisted green synthesis of Hydroxyapatite nanorods using Moringa oleifera flower extract and its antimicrobial applications, Int. J. Vet. Sci. Med., 6(2), 286-295(2018).

Kalaiselvi, V., Mathammal, R. and Anitha, P., Sol-gel mediated synthesis of pure hydroxyapatite at different

temperatures and silver substituted hydroxyapatite for biomedical applications, J. Biotechnol. Biomater., 7(4), 275-277(2017).

https://doi.org/10.4172/2155-952X.1000275

Kalaiselvi, V., Mathammal, R. and Anitha, P. Synthesis and characterization of hydroxyapatite nanoparticles using wet chemical method, Int. J. Adv. Sci. Eng., 4(2), 571-574(2017).

https://doi.org/10.29294/IJASE.4.2.2017.571-574

Kalaiselvi, V., V. Vetrivel, and R. Mathammal, Preparation and Characterization of Titanium Dioxide Nano-particles by Novel Sol-Gel Method, Int. J. Res. Sci., 1(2), 69-72(2014).

Mohammadi, Z. and Paul Michael Howell Dummer, Properties and applications of calcium hydroxide in endodontics and dental traumatology, Int. Endod. J., 44(8), 697-730(2011).

https://doi.org/10.1111/j.1365-2591.2011.01886.x.

Haresh M. Pandya, Anitha, P., Mathammal, R. and Kalaiselvi, V., Incorporation and in vitro application of hydroxyapatite with silver and titanium dopants synthesized by wet chemical method, J. Environ. Nanotechnol., 6(4), 42-46(2017).

https://doi.org/10.13074/jent.2017.12.174290

Ratanatawanate, C., Bui, A., Vu, K. and Balkus Jr K. J., Low-temperature synthesis of copper (II) sulfide quantum dot decorated TiO2 nanotubes and their photocatalytic properties, J. Phys. Chem. C., 115(14), 6175-6180(2011).

https://doi.org/10.1021/jp109716q

Shi, Z., Huang X., Cai, Y., Tang, R. and Yang, D., Size effect of hydroxyapatite nanoparticles on proliferation and apoptosis of osteoblast-like cells, Acta Biomater., 5(1):338-345(2009).

https://doi.org/10.1016/j.actbio.2008.07.023

Simon, A. T., Dutta, D., Chattopadhyay, A. and Ghosh, S. S., Copper Nanocluster-Doped Luminescent Hydroxyapatite Nanoparticles for Antibacterial and Antibiofilm Applications, ACS Omega, 4(3), 4697-4706(2019).

https://doi.org/10.1021/acsomega.8b03076

Uota M, Arakawa H, Kitamura N, Yoshimura T, Tanaka J, Kijima T. Synthesis of high surface area hydroxyapatite nanoparticles by mixed surfactantmediated approach, Langmuir, 21(10), 4724-4728(2005).

https://doi.org/10.1021/la050029m.

Venkatasubbu, G. D, Ramasamy, S., Avadhani, G. S.,Ramakrishnan, V. and Kumar, J., Surface modification and paclitaxel drug delivery of folic acid modified polyethylene glycol functionalized hydroxyapatite nanoparticles, Powder Technology, 235, 437-442(2013).

https://doi.org/10.1016/j.powtec.2012.11.003

Vetrivel, V., Rajendran, K. and Kalaiselvi, V., Synthesis and characterization of pure titanium dioxide

nanoparticles by sol-gel method, Int. J. Chem. Tech. Res., 7(3), 1090-1097(2015).

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