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Abstrakty
Sol-gel method was successfully used for synthesis of ZnO nanoparticles doped with 10 % Mg or Cu. The structure, morphology and optical properties of the prepared nanoparticles were studied as a function of doping content. The synthesized ZnO:(Mg/Cu) samples were characterized using XRD, TEM, FTIR and UV-Vis spectroscopy techniques. The samples show hexagonal wurtzite structure, and the phase segregation takes place for Cu doping. Optical studies revealed that Mg doping increases the energy band gap while Cu incorporation results in decrease of the band gap. The antibacterial activities of the nanoparticles were tested against Escherichia coli (Gram negative bacteria) cultures. It was found that both pure and doped ZnO nanosuspensions show good antibacterial activity which increases with copper doping, and slightly decreases with adding Mg.
Słowa kluczowe
Wydawca
Czasopismo
Rocznik
Tom
Strony
130—135
Opis fizyczny
Bibliogr. 18 poz., rys., wykr., tab.
Twórcy
autor
- Department of Physics, Ferdowsi University of Mashhad, Mashhad, Iran
- Nanoresearch Center, Fedrowsi University of Mashha, Mashhad, Iran
autor
- Department of Physics, Ferdowsi University of Mashhad, Mashhad, Iran
- Nanoresearch Center, Fedrowsi University of Mashha, Mashhad, Iran
autor
- Department of Physics, Ferdowsi University of Mashhad, Mashhad, Iran
- Nanoresearch Center, Fedrowsi University of Mashha, Mashhad, Iran
autor
- Nanoresearch Center, Fedrowsi University of Mashha, Mashhad, Iran
- Department of Biology, Ferdowsi University of Mashad, Mashhad, Iran
autor
- Department of Physics, Ferdowsi University of Mashhad, Mashhad, Iran
- Nanoresearch Center, Fedrowsi University of Mashha, Mashhad, Iran
autor
- Department of Physics, Ferdowsi University of Mashhad, Mashhad, Iran
Bibliografia
- [1] OZGU R U., ALIVOV Y.I., LIU C., TEKE A., RESHCHIKOV M.A., DOG AN S., AVRUTIN V., CHOS.J., MORKOC¸ H., J. Appl. Phys., 98 (2005), 316.
- [2] ADJURISIC A.B., NG A.M.C., CHEN X.Y., Prog. Quant. Electron., 34 (2010), 191.
- [3] WU C.C., WUU D.S., LIN P.R., CHEN T.N., HORNG R.H., Nanoscale Res. Lett., 4 (2009), 377.
- [4] LIN L., FUJI M., WATANABE H., SHIRAI T., TAKAHASHI M., Annu. Rep. ACRC, 8 (2008) 17.
- [5] OZTAS M., BEDIR M., Thin Solid Films, 516 (2008),1703.
- [6] OHIRA T., YAMAMOTO O., IIDA Y., NAKAGAWA Z.,J. Mater. Sci.-Mater. M., 19 (2008), 1407.
- [7] STOIMENOV P.K., KLINGER R.L., MARCHIN G.L.,KLABUNDE K.J., Langmuir, 18 (2002), 6679.
- [8] ZHANG L., JIANG Y., DING Y., POVEY M., YORK D.,J. Nanopart. Res., 9 (2007), 479.
- [9] BRAYNER R., FERRARI-ILIOU R., BRIVOIS N., DJEDIATS., BENEDETTI M.F., FI´E VE F., Nano. Lett., 6(2006), 866.
- [10] YAMAMOTO O., KOMATSU M., SAWAI J., NAKAGAWA Z., J. Mater. Sci.-Mater. M., 15 (2004), 847.
- [11] YAMAMOTO O., SHIMURA T., SAWAI J., KOJIMA H., SASAMOTO T., J. Ceram. Soc. Jap., 108 (2000), 156.
- [12] FERNANDES D.M., SILVA R., WINKLER HECHENLEITNER A.A., RADOVANOVIC E., CUST´ODIO MELO M.A., G´OMEZ PINEDA E.A., ”Synthesis and characterizationof ZnO, CuO and a mixed Zn and Cu oxide”,Mater. Chem. Phys., 115 (2009), 110.
- [13] BIAN J., LOU Y., SUN J., LIANG H., LIU W., J. Mater.Process. Tech., 189 (2007), 473.
- [14] GAYEN R.N., DAS S.N., DALUI S., BHAR R., PALA.K., J. Cryst. Growth, 310 (2008), 4073.
- [15] SAHAR M.D.R., BUDI A.S., J. Solid State Sci. Technol., 14 (2006), 115.
- [16] SONAWANE B.K., BHOLE M.P., PATIL D.S., Physica B, 405 (2010), 1603.
- [17] AHN K.S., DEUTSCH T., YAN Y., JIANG C., PERKINS C.L., TURNER J., AL-JASSIM M., J. Appl. Phys., 102 (2007), 2.
- [18] CHEN H., DING J., MA S.H., Physica E, 42 (2010), 1487.
Typ dokumentu
Bibliografia
Identyfikator YADDA
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