Lithium-doped hydroxyapatite nano-composites: Synthesis, characterization, gamma attenuation coefficient and dielectric properties

被引:80
作者
Badran, H. [1 ]
Yahia, I. S. [1 ,2 ]
Hamdy, Mohamed S. [3 ]
Awwad, N. S. [2 ,3 ]
机构
[1] Ain Shams Univ, Fac Educ, Dept Phys, Nucl Lab,Nanosci & Semicond Labs, Cairo, Egypt
[2] King Khalid Univ, Fac Sci, Dept Phys, AFMOL, POB 9004, Abha, Saudi Arabia
[3] King Khalid Univ, Fac Sci, Dept Chem, POB 9004, Abha, Saudi Arabia
关键词
Lithium-doped HAp; Nanorods; Gamma attenuation coefficient; Dielectric constant; XRD/FE-SEM; FTIR/FT-Raman; CALCIUM-PHOSPHATE CERAMICS; RAMAN; SPECTROSCOPY; COATINGS; APATITES; IONS; FTIR;
D O I
10.1016/j.radphyschem.2016.08.001
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070305 [高分子化学与物理];
摘要
Lithium-hydroxyapatite (0,1, 5, 10, 20, 30 and 40 wt% Li-HAp) nano-composites were synthesized by sol-gel technique followed by microwave-hydrothermal treatment. The composites were characterized by X-ray diffraction (XRD), Field emission scanning electron microscope (FE-SEM), energy dispersive spectroscopy (EDS), Fourier transform infrared (FTIR) and Raman techniques. Gamma attenuation co-efficient and the dielectric properties for all composites were investigated. The crystallinity degree of Li doped HAp was higher than that of un-doped HAp. Gamma attenuation coefficient values increased from 0.562 cm(-1) for 0 wt% Li-HAp to 2.190 cm(-1) for 40 wt% Li-HAp. The alternating current conductivity increased with increasing frequency. The concentration of Li affect the values of dielectric constant where Li doped HAp of low dielectric constant can have an advantage for healing in bone fractures. The calcium to phosphorus ratio decreased from 1.43 to 137 with the addition of lithium indicating the Ca deficiency in the studied composites. Our findings lead to the conclusion that Li-HAp is a new nano-composite useful for medical applications and could be doped with gamma shield materials. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:85 / 91
页数:7
相关论文
共 39 条
[1]
Adzila S, 2013, INDIAN J CHEM A, V52, P739
[2]
Nanostructure processing of hydroxyapatite-based bioceramics [J].
Ahn, ES ;
Gleason, NJ ;
Nakahira, A ;
Ying, JY .
NANO LETTERS, 2001, 1 (03) :149-153
[3]
Micro-Raman and FTIR studies of synthetic and natural apatites [J].
Antonakos, Anastasios ;
Liarokapis, Efthymios ;
Leventouri, Theodora .
BIOMATERIALS, 2007, 28 (19) :3043-3054
[4]
Strontium-substituted hydroxyapatite nanocrystals [J].
Bigi, Adriana ;
Boanini, Elisa ;
Capuccini, Chiara ;
Gazzano, Massimo .
INORGANICA CHIMICA ACTA, 2007, 360 (03) :1009-1016
[5]
Callister W.D., 1997, MAT SCI ENG INTRO
[6]
Choi JW, 1998, J AM CERAM SOC, V81, P1743
[7]
Cullity B. D., 1978, ELEMENTS XRAY DIFFRA
[8]
THEORY OF AC CONDUCTION IN CHALCOGENIDE GLASSES [J].
ELLIOTT, SR .
PHILOSOPHICAL MAGAZINE, 1977, 36 (06) :1291-1304
[9]
Nanosize hydroxyapatite: doping with various ions [J].
Evis, Z. ;
Webster, T. J. .
ADVANCES IN APPLIED CERAMICS, 2011, 110 (05) :311-320
[10]
Impedance spectroscopy of p-ZnGa2Te4/n-Si nano-HJD [J].
Fouad, S. S. ;
Sakr, G. B. ;
Yahia, I. S. ;
Abdel-Basset, D. M. ;
Yakuphanoglu, F. .
PHYSICA B-CONDENSED MATTER, 2013, 415 :82-91