Hydroxyapatite materials-synthesis routes, mechanical behavior, theoretical insights, and artificial intelligence models: a review

IF 1.9 4区 材料科学 Q3 Materials Science Journal of the Australian Ceramic Society Pub Date : 2023-03-10 DOI:10.1007/s41779-023-00854-2
David O. Obada, Semiyou A Osseni, Haziz Sina, Ayodeji N. Oyedeji, Kazeem A. Salami, Emmanuel Okafor, Stefan Csaki, Simeon A. Abolade, Akinlolu Akande, Muhammad Dauda, Laminu S. Kuburi, Sadou Dalhatou, Johnson K Abifarin, Abdulaziz A. Bada, Emmanuel T. Dauda
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引用次数: 4

Abstract

Over the years, hydroxyapatite (HAp) has been a well-researched biomaterial because of its bioactive and biocompatible properties with remarkable applications for bone tissue engineering. The robust structure of HAp allows for a host of applications in biomedicine. HAp is enriched in calcium and phosphate, can be sourced from synthetic or natural precursors with significant characteristics notable of biomaterials, and can be produced by facile protocols for clinical use. Nonetheless, HAp prepared from natural or synthetic sources are different due to the conditions of processing. One of the factors in this direction and for the high performance of bioceramics in biomedicine is a robust mechanical strength that prevents failure of the HAp scaffolds. Stemming from these, and of particular interest, is the porosity of the HAp-derived scaffolds that plays a major role in the mechanical properties in vitro and in vivo. Many reports have it that there are reduced mechanical properties vis-à-vis the inherent high porosity of the scaffolds, and these must be balanced in line with the degradation rate of the scaffolds. Gradients in pore sizes and crack propagation tendencies are important to lead to new production methods with the potential to generate scaffolds with morphological and mechanical properties designed to meet bone repair needs. Nowadays, validating mechanical and materials engineering properties with the aid of atomistic simulations using density functional theory (DFT) and artificial intelligence (AI), and the complement of experimental studies, is gradually becoming an important research domain within the scientific community. The importance of these theoretical and AI methods can be ascribed to the comprehension of the non-linear relationship between some measured properties using experimental datasets. Hence, this review explores a re-cap and the state of knowledge regarding sustainable natural sources of HAp, data on mechanical property measurements, the link between porosity and mechanical properties of HAp-derived materials for bone tissue engineering, a relatively new method for characterizing the mechanical behavior of HAp, computational trends in biomaterials research, and recent trends on the biomedical applicability of HAp.

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羟基磷灰石材料-合成路线,力学行为,理论见解和人工智能模型:综述
羟基磷灰石(hydroxyapatite, HAp)具有生物活性和生物相容性,在骨组织工程中具有重要的应用价值,是近年来研究较多的生物材料。羟基磷灰石坚固的结构使其在生物医学领域有了广泛的应用。羟基磷灰石富含钙和磷酸盐,可以来源于具有生物材料显著特征的合成或天然前体,并且可以通过简单的方案生产用于临床。然而,由于加工条件的不同,从天然来源或合成来源制备的HAp是不同的。生物陶瓷在生物医学领域高性能的一个重要因素是其强大的机械强度,可以防止HAp支架的失效。基于这些,特别令人感兴趣的是hap衍生支架的孔隙度,它在体外和体内的机械性能中起着重要作用。许多报道指出,由于支架固有的高孔隙率,其力学性能会降低-à-vis,这必须与支架的降解率相平衡。孔径梯度和裂纹扩展趋势对于产生新的生产方法非常重要,这些方法有可能产生具有形态和力学性能的支架,以满足骨修复的需要。目前,利用密度泛函理论(DFT)和人工智能(AI)的原子模拟,以及实验研究的补充,验证机械和材料工程特性,正逐渐成为科学界的一个重要研究领域。这些理论和人工智能方法的重要性可以归因于使用实验数据集理解一些测量属性之间的非线性关系。因此,本文将对HAp的可持续自然来源、力学性能测量数据、用于骨组织工程的HAp衍生材料的孔隙率和力学性能之间的联系、表征HAp力学行为的相对较新的方法、生物材料研究的计算趋势以及HAp生物医学适用性的最新趋势进行回顾和探讨。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of the Australian Ceramic Society
Journal of the Australian Ceramic Society MATERIALS SCIENCE, CERAMICS-
CiteScore
3.20
自引率
5.30%
发文量
1
审稿时长
>12 weeks
期刊介绍: Publishes high quality research and technical papers in all areas of ceramic and related materials Spans the broad and growing fields of ceramic technology, material science and bioceramics Chronicles new advances in ceramic materials, manufacturing processes and applications Journal of the Australian Ceramic Society since 1965 Professional language editing service is available through our affiliates Nature Research Editing Service and American Journal Experts at the author''s cost and does not guarantee that the manuscript will be reviewed or accepted
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