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Synthesis of Platinum nanoparticles by Gamma Radiolysis

Published online by Cambridge University Press:  12 March 2018

Takalani Cele*
Affiliation:
UNESCO-UNISA Africa Chair in Nanosciences-Nanotechnology, College of Graduate Studies, University of South Africa, Muckleneuk ridge, P O Box 392, Pretoria, 0001, South Africa; iThemba LABS-National Research Foundation, P O Box 722, Somerset West, 7129, South Africa
Malik Maaza
Affiliation:
UNESCO-UNISA Africa Chair in Nanosciences-Nanotechnology, College of Graduate Studies, University of South Africa, Muckleneuk ridge, P O Box 392, Pretoria, 0001, South Africa; iThemba LABS-National Research Foundation, P O Box 722, Somerset West, 7129, South Africa
Alain Gibaud
Affiliation:
L’Université Nantes Angers Le Mans (L’UNAM), Institut des Molécules et Matériaux du Mans (IMMM UMR 6283 CNRS), Avenue Oliver Messiaen, 72085Le Mans, Cedex 9, France
*
*Correspondence author: tmadima@yahoo.com
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Abstract

The synthesis of Platinum (Pt) nanoparticles by gamma irradiation is presented. The 0.1 M Pt solution of different concentration was prepared from K2PtCl4. The platinum aqueous solutions were irradiated by gamma radiation at a dose of 70, 90 and 120 kGy. The findings show the effect of irradiation on PtII solutions with different concentrations. The big black particles that are fairly agglomerated when the concentration was above 0.0050 M were observed. The UV-Vis spectrum of Pt of different concentrations shows a strong absorption peak at the wavelength 261 nm after irradiation, which indicates the presence of platinum nanoparticles. Furthermore, FTIR, XRD and HRTEM images also confirmed the presence of the nanoparticles produced by Radiolysis. The size of the Pt nanoparticles was found to be 7.39 nm.

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Articles
Copyright
Copyright © Materials Research Society 2018 

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References

Ma, W, et al. , Nano Lett., 17, 43544358 (2017)CrossRefGoogle Scholar
Petit, C, et al. , J. Phys. Chem. B, 103, 18051810, (1999)CrossRefGoogle Scholar
Wang, L, et al. , NPG Asia Mater. 5, e40, (2013)CrossRefGoogle Scholar
Buzea, C, et al. , Biointerphases, 2 (4), MR17–MR71, (2007)CrossRefGoogle Scholar
Sau, T, et al. , Shape-Controlled Synthesis of Metal Nanoparticles of High Surface Energy and Their Applications in Electrocatalysis, (2012)Google Scholar
Chen, A, et al. , Chem Rev. ;110 (6), 3767–804, (2010)CrossRefGoogle Scholar
Modi, S, Physico-chemical properties of nanosized metal particles, (2012)Google Scholar
Stepanov, A. L., et al. , Rev. Adv. Mater. Sci., 38, 160175, (2014)Google Scholar
Zhang, N, et al. , Near-field dielectric scattering promotes optical absorption by platinum nanoparticles, Nature Photonics, (2016)CrossRefGoogle Scholar
Toshima, N, et al. , New. J. Chem., 22, 11791201, (1998)CrossRefGoogle Scholar
Adlim, , Indo. J. Chem., 6 (1), 110, (2006)Google Scholar
Biswal, J, A study on synthesis of silver and gold nanoparticles by employing gamma radiation, their characterization and applications, National institute, (2012)Google Scholar
Hirsch, T. et al. , Angew. Chem. Int. Ed. 44, 6775, (2005)CrossRefGoogle Scholar
Okitsu, K. et al. , Mater. Lett. 61, 3429. (2007)CrossRefGoogle Scholar
Gutierrez, M. et al. , J. Phys. Chem. 97, 11368, (1993)CrossRefGoogle Scholar
Sato, T. et al. , J. Photochem. Photobiol. A 127, 83. (1999)CrossRefGoogle Scholar
Cele, T. et al. , Johnson Matthey Technol. Rev., 2017, 61, (4), 279289, (2017)CrossRefGoogle Scholar
“USGS Minerals Information: Mineral Commodity Summaries”. minerals.USGS.gov. Accessed 8 January 2018.Google Scholar
Rao, Y. N. et al. , Radiat. Phys. Chem., 79, 12401246, (2010)CrossRefGoogle Scholar
Abedini, A. et al. , Nanoscale Res. Lett. 8, 1, 474, (2013)CrossRefGoogle Scholar
Gharibshahi, E. et al. , Int. J. Mol. Sci., 13, 1472314741, (2012)CrossRefGoogle Scholar
Willets, K. A. et al. , Annu. Rev. Phys. Chem., 58, 267297, (2007)CrossRefGoogle Scholar
Cullity, B. D. et al. , Element of x-ray diffraction, 3rd ed., Pearson Education Limited, (2001).Google Scholar
Cele, H. M., University of Zululand, MSc Thesis, (2009)Google Scholar
Hussain, S, Linkopings Universitet institute of technology, MSc thesis, (2008)Google Scholar
Stepanov, A. L. et al. , Rev. Adv. Mater. Sci., 38, 160175, (2014)Google Scholar
Tsuji, T. et al. , Appl. Surf. Sci., 254, 16, 52245230, (2008)CrossRefGoogle Scholar
Binh, N. T. et al. , VN journal of science: mathemetics-physics, 30, 2, (2014)Google Scholar
Balice, V. et al. , J. inorg. Nucl. Chem., 32, 12371240, (1970)CrossRefGoogle Scholar
Silverstein, R.M. et al. , Spectrometric Identification of Organic Compounds. 4th ed. New York: John Wiley and Sons, QD272.S6 S55, (1981)Google Scholar
Allen, A. D. et al. , Can. J. Chem., 42, 15511554, (1964)CrossRefGoogle Scholar