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Multiple characterization study on porosity and pore structure of calcium phosphate cements

机译:磷酸钙骨水泥孔隙率和孔结构的多重表征研究

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摘要

Characterization of the intricate pore structure of calcium phosphate cements is a key step to successfully link the structural properties of these synthetic bone grafts with their most relevant properties, such as in vitro or in vivo behaviour, drug loading and release properties, or degradation over time. This is a challenging task due to the wide range of pore sizes in calcium phosphate cements, compared to most other ceramic biomaterials. This work provides a critical assessment of three different techniques based on different physical phenomena, namely mercury intrusion porosimetry (MIP), Nitrogen sorption, and thermoporometry (TPM) for the detailed characterization of four calcium phosphate cements with different textural properties in terms of total porosity, pore size distribution (PSD), and pore entrance size distribution (PESD). MIP covers a much wider size range than TPM and Nitrogen sorption, offering more comprehensive information at the micrometer level. TPM, and especially Nitrogen sorption, are non-destructive techniques and, although they cover a limited size range, provide complementary information regarding pore structure associated with crystal shape at the nanoscale, recording both PSD and PESD in a single experiment. MIP tended to register smaller sizes, especially at low L/P ratios, due to the network effect, which has a strong influence on the outcome of this technique.\udStatement of significance\ud\udThe detailed characterisation of the porosity of calcium phosphate cements is of paramount importance, since it is a key parameter influencing some of the most relevant features, like mechanical properties, degradation rate or drug loading and release kinetics. However, this is a challenging task because, once hardened, calcium phosphate cements present an intricate morphology, consisting of a network of precipitated crystals, which generate a high intrinsic micro/nano porosity, with pore sizes covering six orders of magnitude. This work provides for the first time a critical assessment of the advantages and limitations of three different techniques, namely mercury intrusion porosimetry, Nitrogen sorption and Thermoporometry, for the characterisation of the porosity of four calcium phosphate cements with different textural propertie
机译:表征磷酸钙水泥的复杂孔结构是成功地将这些合成骨移植物的结构特性与其最相关的特性(例如体外或体内行为,药物加载和释放特性或随时间降解)联系起来的关键步骤。与大多数其他陶瓷生物材料相比,由于磷酸钙水泥的孔径范围广,这是一项艰巨的任务。这项工作对基于不同物理现象的三种不同技术进行了严格的评估,分别是压汞法(MIP),氮吸附法和热孔法(TPM),以便根据总孔隙率详细表征四种具有不同组织特性的磷酸钙水泥。 ,孔径分布(PSD)和孔入口尺寸分布(PESD)。 MIP的尺寸范围比TPM和氮吸附要大得多,可提供微米级的更全面的信息。 TPM(尤其是氮吸附)是非破坏性技术,尽管它们覆盖有限的尺寸范围,但可提供有关与纳米级晶体形状相关的孔结构的补充信息,可在单个实验中记录PSD和PESD。由于网状效应,MIP倾向于具有较小的尺寸,特别是在低L / P比的情况下,这对这项技术的结果有很大影响。\ ud重要意义\ ud \ ud磷酸钙水泥孔隙率的详细表征这是最重要的,因为它是影响某些最相关特征的关键参数,例如机械性能,降解速率或载药量和释放动力学。但是,这是一项具有挑战性的任务,因为一旦硬化,磷酸钙胶结剂就会呈现出复杂的形貌,由析出的晶体网络组成,这些晶体会生成高固有的微/纳米孔隙度,孔径覆盖六个数量级。这项工作首次对三种不同技术的优点和局限性进行了严格的评估,即压汞法,氮吸附法和热孔法,用于表征四种具有不同结构特性的磷酸钙水泥的孔隙度。

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