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Biogenic hydroxyapatite : a new material for the preservation and restoration of the built environment

机译:生物羟基磷灰石:一种用于保存和恢复建筑环境的新材料

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摘要

Ordinary Portland cement (OPC) is by weight the world’s most produced man-made material and is used in a variety of applications in environments ranging from buildings, to nuclear wasteforms, and within the human body. In this paper, we present for the first time the direct deposition of biogenic hydroxyapatite onto the surface of OPC in a synergistic process which uses the composition of the cement substrate. This hydroxyapatite is very similar to that found in nature, having a similar crystallite size, iron and carbonate substitution, and a semi-crystalline structure. Hydroxyapatites with such a structure are known to be mechanically stronger and more biocompatible than synthetic or biomimetic hydroxyapatites. The formation of this biogenic hydroxyapatite coating therefore has significance in a range of contexts. In medicine, hydroxyapatite coatings are linked to improved biocompatibility of ceramic implant materials. In the built environment, hydroxyapatite coatings have been proposed for the consolidation and protection of sculptural materials such as marble and limestone, with biogenic hydroxyapatites having reduced solubility compared to synthetic apatites. Hydroxyapatites have also been established as effective for the adsorption and remediation of environmental contaminants such as radionuclides and heavy metals. We identify that in addition to providing a biofilm scaffold for nucleation, the metabolic activity of Pseudomonas fluorescens increases the pH of the growth medium to a suitable level for hydroxyapatite formation. The generated ammonia reacts with phosphate in the growth medium, producing ammonium phosphates which are a precursor to the formation of hydroxyapatite under conditions of ambient temperature and pressure. Subsequently, this biogenic deposition process takes place in a simple reaction system under mild chemical conditions and is cheap and easy to apply to fragile biological or architectural surfaces.
机译:按重量计,普通波特兰水泥(OPC)是世界上生产最多的人造材料,并且在建筑物,核废料以及人体内部等各种环境中使用。在本文中,我们首次提出了利用水泥基质成分的协同过程,将生物羟基磷灰石直接沉积在OPC表面上。这种羟基磷灰石与自然界中的羟基磷灰石非常相似,具有相似的微晶尺寸,铁和碳酸盐取代基以及半结晶结构。具有这种结构的羟基磷灰石在机械上比合成的或仿生的羟基磷灰石在机械上更强并且生物相容性更高。因此,这种生物羟基磷灰石涂层的形成在一定范围内具有重要意义。在医学上,羟基磷灰石涂层与改善陶瓷植入物材料的生物相容性有关。在建筑环境中,已经提出了羟基磷灰石涂层用于固结和保护诸如大理石和石灰石的雕塑材料,与合成磷灰石相比,生物型羟基磷灰石的溶解度降低。还已经确定羟基磷灰石对于吸附和修复环境污染物如放射性核素和重金属有效。我们发现,除了提供用于成核的生物膜支架外,荧光假单胞菌的代谢活性还将生长培养基的pH值提高至适合羟基磷灰石形成的水平。产生的氨与生长培养基中的磷酸盐反应,产生磷酸铵,磷酸铵是在环境温度和压力条件下形成羟基磷灰石的前体。随后,这种生物沉积过程在简单的反应系统中在温和的化学条件下进行,价格便宜,易于应用于易碎的生物或建筑表面。

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