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An experimental-computer modeling study of inorganic phosphates surface adsorption on hydroxyapatite particles

机译:无机磷酸盐表面吸附羟基磷灰石颗粒的实验计算机模拟研究

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摘要

The adsorption of orthophosphate, pyrophosphate, triphosphate and a trisphosphonate onto hydroxyapatite has been examined using experiments and quantum mechanical calculations. Adsorption studies with FTIR and X-ray photoelectron spectroscopies have been performed considering both crystalline hydroxyapatite (HAp) and amorphous calcium phosphate particles, which were specifically prepared and characterized for this purpose. Density functional theory (DFT) calculations have been carried out considering the (100) and (001) surfaces of HAp, which were represented using 1 x 2 x 2 and 3 x 3 x 1 slab models, respectively. The adsorption of phosphate onto the two crystallographic surfaces is very much favored from an energetic point of view, which is fully consistent with current interpretations of the HAp growing process. The structures calculated for the adsorption of pyrophosphate and triphosphate evidence that this process is easier for the latter than for the former. Thus, the adsorption of pyrophosphate is severely limited by the surface geometry while the flexibility of triphosphate allows transforming repulsive electrostatic interactions into molecular strain. On the other hand, calculations predict that the trisphosphonate only adsorbs onto the (001) surface of HAp. Theoretical predictions are fully consistent with experimental data. Thus, comparison of DFT results and spectroscopic data suggests that the experimental conditions used to prepare HAp particles promote the predominance of the (100) surface. Accordingly, experimental identification of the adsorption of trisphosphonate onto such crystalline particles is unclear while the adsorption of pyrophosphate and triphosphate is clearly observed.
机译:使用实验和量子力学计算已经研究了正磷酸盐,焦磷酸盐,三磷酸盐和三膦酸盐在羟基磷灰石上的吸附。考虑到结晶性羟基磷灰石(HAp)和无定形磷酸钙颗粒,已经进行了FTIR和X射线光电子能谱的吸附研究,这是专门为此目的制备和表征的。考虑到HAp的(100)和(001)表面,分别进行了密度泛函理论(DFT)计算,分别使用1 x 2 x 2和3 x 3 x 1平板模型表示。从高能的观点来看,磷酸盐在两个晶体表面上的吸附是非常有利的,这与目前对HAp生长过程的解释完全一致。计算得到的焦磷酸盐和三磷酸盐的吸附结构表明,后者比前者更容易进行此过程。因此,焦磷酸盐的吸附受到表面几何形状的严格限制,而三磷酸盐的柔韧性允许将排斥的静电相互作用转化为分子应变。另一方面,计算预测三膦酸酯仅吸附在HAp的(001)表面上。理论预测与实验数据完全一致。因此,DFT结果与光谱数据的比较表明,用于制备HAp颗粒的实验条件促进了(100)表面的优势。因此,尚不清楚在这种晶体颗粒上吸附三膦酸酯的实验鉴定,而清楚地观察到焦磷酸盐和三磷酸盐的吸附。

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