Abutalib M M, Yahia I S
Physics Department, Faculty of Science-AL Faisaliah, Campus, King Abdulaziz University, Jeddah, Saudi Arabia.
Nano-Science & Semiconductor Labs, Department of Physics, Faculty of Education, Ain Shams University, Roxy, 11757 Cairo, Egypt; Advanced Functional Materials & Optoelectronic Laboratory, Department of Physics, Faculty of Science, King Khalid University, P.O. Box 9004, Abha, Saudi Arabia.
Mater Sci Eng C Mater Biol Appl. 2017 Sep 1;78:1093-1100. doi: 10.1016/j.msec.2017.04.131. Epub 2017 Apr 26.
In the current work, the authors report the microwave-assisted synthesis Molybdenum-doped (from 0.05 to 5wt%) hydroxyapatite (HAp) for the first time. The morphology of Mo-doped HAp is nanorods of diameter in the range of 25-70nm and length in the range of 25nm to 200nm. The good crystalline nature was confirmed from X-ray diffraction patterns and also lattice parameters, grain size, strain and dislocation density were determined. The crystallite size was found to be in the range 16 to 30nm and crystallinity was found to be enhanced from 0.5 to 0.7 with doping. The field emission SEM micrographs show that the morphology of the synthesized nanostructures of pure and Mo-doped HAp are nanorods of few nanometers. The vibrational modes were identified using the FT-Raman and FT-IR spectroscopy. The dielectric properties were studied and the AC electrical conductivity was found to be increased with increasing the concentration of Mo ions doping in HAp. Moreover, antimicrobial studies were also carried out to understand the anti-bacterial and anti-fungi properties. The results suggest that it may be a good bio-ceramics material for bio-medical applications. Mo-doped HAp was subjected to the gamma irradiation produced from Cs-137 (662keV) and its related parameters such as linear absorption coefficient, the half-value layer (HVL) and the tenth value layer TVL were calculated and analyzed.
在当前工作中,作者首次报道了微波辅助合成钼掺杂(0.05至5wt%)羟基磷灰石(HAp)。钼掺杂HAp的形态为直径在25 - 70nm范围内、长度在25nm至200nm范围内的纳米棒。通过X射线衍射图谱证实了其良好的结晶性质,并且还测定了晶格参数、晶粒尺寸、应变和位错密度。发现微晶尺寸在16至30nm范围内,并且随着掺杂,结晶度从0.5提高到0.7。场发射扫描电子显微镜图像表明,纯HAp和钼掺杂HAp的合成纳米结构的形态均为几纳米的纳米棒。使用傅里叶变换拉曼光谱和傅里叶变换红外光谱确定了振动模式。研究了介电性能,发现随着HAp中钼离子掺杂浓度的增加,交流电导率增加。此外,还进行了抗菌研究以了解其抗菌和抗真菌性能。结果表明,它可能是一种用于生物医学应用的良好生物陶瓷材料。对钼掺杂HAp进行了由Cs - 137(662keV)产生的伽马辐射,并计算和分析了其相关参数,如线性吸收系数、半值层(HVL)和十分之一值层TVL。