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首页> 外文期刊>Crystal growth & design >In situ time-resolved studies of octacalcium phosphate and dicalcium phosphate dihydrate in simulated body fluid: Cooperative interactions and nanoapatite crystal growth
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In situ time-resolved studies of octacalcium phosphate and dicalcium phosphate dihydrate in simulated body fluid: Cooperative interactions and nanoapatite crystal growth

机译:模拟体液中磷酸八钙和磷酸二钙二水合物的原位时间分辨研究:协同相互作用和纳米磷灰石晶体生长

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摘要

The present study is focused on the in vitro study of the biphasic octacalcium phosphate (OCP)-dicalcium phosphate dihydrate (DCPD) system transformations in simulated body fluid (SBF) for possible applications as bone substitute materials. The aim of this paper is to outline the role of the additional component DCPD during a transformation/crystallization processes. Energy dispersive X-ray diffraction and FTIR spectroscopy techniques were used for in situ monitoring of the processes taking place in the system in real time. Morphological investigations were performed applying the scanning electron microscopy technique. Several OCP-DCPD combinations were investigated: (1) 100% OCP; (2) 70% OCP-30% DCPD; (3) 100% DCPD. The obtained experimental results allowed us to conclude that when only OCP is present in SBF, the formation of carbonated hydroxyapatite takes place, whereas for the OCP-DCPD (30%) system in SBF, less kinetically favorable hydroxyapatite (HA) is formed. The additional component (DCPD) influences significantly the structural behavior of hydroxyapatite, acting as the HA crystallization inhibition agent. By means of this approach, allowing for the control of the HA crystallization, the calcium phosphate based biomaterials can be suitably modified for implant use in bone tissue engineering. The results obtained in this work provided some insights into the biomineralization mechanism.
机译:本研究的重点是模拟体液(SBF)中双相磷酸八钙(OCP)-磷酸二钙二水合物(DCPD)系统转化的体外研究,可能用作骨替代材料。本文的目的是概述附加组分DCPD在转变/结晶过程中的作用。能量色散X射线衍射和FTIR光谱技术用于实时监测系统中发生的过程。应用扫描电子显微镜技术进行形态学研究。研究了几种OCP-DCPD组合:(1)100%OCP; (2)70%OCP-30%DCPD; (3)100%DCPD。获得的实验结果使我们得出结论,当SBF中仅存在OCP时,就会发生碳酸羟基磷灰石的形成,而对于SBF中的OCP-DCPD(30%)体系,会形成动力学上较不利的羟基磷灰石(HA)。附加成分(DCPD)会显着影响用作HA结晶抑制剂的羟基磷灰石的结构行为。通过这种方法,允许控制HA的结晶,可以对基于磷酸钙的生物材料进行适当的改性,以用于骨组织工程中的植入物。这项工作获得的结果为生物矿化机制提供了一些见识。

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