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首页> 外文期刊>Progress in crystal growth and characterization of materials >Progress on the preparation of nanocrystalline apatites and surface characterization: Overview of fundamental and applied aspects
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Progress on the preparation of nanocrystalline apatites and surface characterization: Overview of fundamental and applied aspects

机译:纳米晶磷灰石的制备和表面表征的进展:基本和应用方面的概述

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Nanocrystalline calcium phosphate apatites constitute the main inorganic part of hard tissues, and a growing focus is devoted to prepare synthetic analogs, so-called "biomimetic", able to precisely mimic the morphological and physico-chemical features of biological apatite compounds. Both from fundamental and applied viewpoints, an accurate characterization of nanocrystalline apatites, including their peculiar surface features, and a deep knowledge of crystallization aspects are prerequisites to attempt understanding mineralization phenomena in vivo as well as for designing innovative bioactive materials that may then find applications in bone tissue engineering, either as self-supported scaffolds and fillers or in the form of coatings, but also in other domains such as drug delivery or else medical imaging. Also, interfacial phenomena are of prime importance for getting a better insight of biomineralization and for following the behavior of biomaterials in or close to their final conditions of use. In this view, both adsorption and ion exchange represent essential processes involving the surface of apatite nanocrystals, possibly doped with foreign elements or functionalized with organic molecules of interest. In this review paper, we will address these various points in details based on a large literature survey. We will also underline the fundamental physico-chemical and behavioral differences that exist between nanocrystalline apatites (whether of biological origin or their synthetic biomimetic analogs) and stoichiometric hydroxyapatite.
机译:纳米晶磷酸钙磷灰石构成硬组织的主要无机部分,并且越来越多地致力于制备能够精确模拟生物磷灰石化合物的形态和物理化学特征的合成类似物,即所谓的“仿生”。从基本和应用的观点来看,纳米晶磷灰石的精确表征(包括其独特的表面特征)以及对结晶方面的深入了解都是尝试了解体内矿化现象以及设计创新的生物活性材料的先决条件,这些材料随后将在纳米管中找到应用。骨组织工程,既可以作为自支撑的脚手架和填充物,也可以涂层的形式,还可以用于其他领域,例如药物输送或医学成像。同样,界面现象对于更好地了解生物矿化以及遵循生物材料在最终使用条件或接近最终使用条件下的行为也至关重要。按照这种观点,吸附和离子交换都代表涉及磷灰石纳米晶体表面的必要过程,可能掺杂有异质元素或被感兴趣的有机分子官能化。在这篇综述文章中,我们将基于大型文献调查来详细论述这些问题。我们还将强调纳米晶磷灰石(无论是生物来源的还是合成的仿生类似物)与化学计量的羟基磷灰石之间存在的基本物理化学和行为差异。

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