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Synthesis of pure and doped nano-calcium phosphates using different conventional methods for biomedical applications: a review

热液循环 材料科学 水解 纳米- 降水 兴奋剂 化学工程 化学合成 纳米技术 化学 生物化学 冶金 有机化学 复合材料 工程类 体外 物理 光电子学 气象学
作者
Md. Abu Kawsar,Md. Sahadat Hossain,Md. Kawcher Alam,Newaz Mohammed Bahadur,Md. Aftab Ali Shaikh,Samina Ahmed
出处
期刊:Journal of Materials Chemistry B [Royal Society of Chemistry]
卷期号:12 (14): 3376-3391 被引量:26
标识
DOI:10.1039/d3tb02846a
摘要

The applications of calcium phosphates (hydroxyapatite, tetracalcium phosphate, tricalcium phosphate (alpha and beta), fluorapatite, di-calcium phosphate anhydrous, and amorphous calcium-phosphate) are increasing day by day. Calcium hydroxyapatite, commonly known as hydroxyapatite (HAp), represents a mineral form of calcium apatite. Owing to its close molecular resemblance to the mineral constituents of bones, teeth, and hard tissues, HAp is often employed in the biomedical domain. In addition, it is extensively employed in various sectors such as the remediation of water, air, and soil pollution. The key advantage of HAp lies in its potential to accommodate a wide variety of anionic and cationic substitutions. Nevertheless, HAp and tricalcium phosphate (TCP) syntheses typically involve the use of chemical precursors containing calcium and phosphorus sources and employ diverse techniques, such as solid-state, wet, and thermal methods or a combination of these processes. Researchers are increasingly favoring natural sources such as bio-waste (eggshells, oyster shells, animal bones, fish scales, etc.) as viable options for synthesizing HAp. Interestingly, the synthesis route significantly influences the morphology, size, and crystalline phase of calcium phosphates. In this review paper, we highlight both dry and wet methods, which include six commonly used synthesis methods (i.e. solid-state, mechano-chemical, wet-chemical precipitation, hydrolysis, sol-gel, and hydrothermal methods) coupled with the variation in source materials and their influence in modifying the structural morphology from a bulky state to nanoscale to explore the applications of multifunctional calcium phosphates in different formats.
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