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Języki publikacji
Abstrakty
A series of glasses of the composition 20Na2-O-15CaO-5B2O3-5SiO2-(55 - x) P2O5:xMnO2, was prepared and characterized by XRD, DSC, SEM, and Raman techniques. The samples were later immersed in simulated body fluid (SBF) for checking the potential growth of hydroxyapatite layer (HA). Experiments confirmed that addition of manganese oxide leads to structural changes of the glasses. With increasing content of MnO2, the surface of the samples became more congenial for improving the growth of HA. The formation of HA layer on the surface of the samples was confirmed just after seven days of immersion. The growth rate of HA has gradually increased with the increase of MnO2 content.
Wydawca
Czasopismo
Rocznik
Tom
Strony
760--766
Opis fizyczny
Bibliogr. 20 poz., rys., tab.
Twórcy
autor
- Institute of Physics, Jan Dlugosz University, Czestochowa, Poland
autor
- Institute of Physics, Jan Dlugosz University, Czestochowa, Poland
autor
- Institute of Chemistry, Environmental Protection and Biotechnology, Jan Dlugosz University, Czestochowa, Poland
autor
- Institute of Physics, Jan Dlugosz University, Czestochowa, Poland
autor
- Physics Department, Acharya Nagarjuna University, Nagarjuna Nagar-522 510, A.P., India
Bibliografia
- [1] HENCH L.L., J. Mater. Sci.-Mater. M., 17 (2006), 967.
- [2] HENCH L.L., SPLINTER R.J., ALLEN W.C., GREENLEE T.K., J. Biomed. Mater. Res. A, 5 (1971), 117.
- [3] JONES J.R., Acta Biomater., 9 (2013), 4457.
- [4] HENCH L.L., POLAK J.M., Science, 295 (2002), 1014.
- [5] LEI B., CHEN X.F., WANG Y.J., ZHAO N.R., DU C., FANG L.M., J. Biomed. Mater. Res. A, 94A (2010), 1091.
- [6] AHMED I., LEWIS M., OLSEN I., KNOWLES J.C., Biomaterials, 25 (2004), 491.
- [7] RAHMAN M.N., DAY D.E., BAL B.S., FU Q., JUNG S.B., BONEWALD L.F., TOMSIA A.P., Acta Biomater., 7 (2011), 2355.
- [8] EDEN M., J. Non-Cryst. Solids, 357 (2011),1595.
- [9] WU C., ZHOU Y., XU M., HAN P., CHEN L., CHANG J., XIAO Y., Biomaterials, 34 (2013), 422 .
- [10] WU C., ZHOU Y., FAN W., HAN P., CHANG J., YUEN J., ZHANG M., XIAO Y., Biomaterials, 33 (2012), 2076.
- [11] ZREIQAT H., RAMASWAMY Y., CHENGTIE W.U., PASCHALIDIS A., LU Z.F., JAMES B., BIRKE O., MCDONALD M., LITTLE D., DUNSTAN C.R., Biomaterials, 31 (2010), 3175.
- [12] WU C., ZHOU Y., LIN C., CHANG J., XIAO Y., Acta Biomater., 8 (2012) 3805.
- [13] GENTLEMAN E., FREDHOLM Y.C., JELL G., LOTFIBAKHSHAIESH N., O’DONNELL M.D., HILL R.G., STEVENS M. M., Biomaterials, 31 (2010) 3949.
- [14] OYANE A., KIM H-M., FURUYA T., KOKUBO T., MIYAZAKI T., NAKAMURA T., J. Biomed. Mater. Res. A, 65 (2003), 188.
- [15] KALPANA T., BRIK M.G., SUDARSAN V., NARESH P., RAVI KUMAR V., KITYK I.V., VEERAIAH N., J. Non- Cryst. Solids, 419 (2015), 75.
- [16] SRINIVASA RAO P., RAMESH BABU P., VIJAY R. , NARENDRUDU T., VEERAIAH N., KRISHNA RAO D., Mater. Res. Bull., 57 (2015), 58.
- [17] CHAHINE A., ET-TABIORU M., ELBENAISSI M., HADDAD M., PASCAL J.L., Mater. Chem. Phys., 84 (2004), 341.
- [18] JULIEN C., MASSOT M., BADDOUR-HADJEAN R., FRANGER S., BACH S., PEREIRA-RAMOS J.P., Solid State Ionics, 159 (2003), 345.
- [19] JAGAN MOHINI G., SAHAYA BASKARAN G., RAVI KUMAR V., PIASECKI M., VEERAIAH N., Mater. Sci. Eng. C Mater. Biol. Appl., 57 (2015), 240.
- [20] MAQUET V., BOCCACCINI A.R., PRAVATA L., NOTINGHER I., JEROME R., Biomaterials, 25 (2004), 4185.
Uwagi
PL
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2018).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-5445f2ab-7256-419b-a878-5c80be565c19