Synthesis and Characterization of Cockle Shell-Based Calcium Carbonate Aragonite Polymorph Nanoparticles with Surface Functionalization

Syairah Liyana Mohd Abd Ghafar, M. Hussein, Z. A. Zakaria
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引用次数: 30

Abstract

The development of cockle shell-based calcium carbonate aragonite polymorph nanoparticle synthesis method using the technique of mechanical stirring in the presence of dodecyl dimethyl betaine (BS-12) incorporated with surface functionalization demonstrated high homogeneity of sample product with good nanoparticles dispersion. The cockle shell-based calcium carbonate aragonite nanoparticle with functionalized surface was characterized using transmission electron microscopy (TEM), field emission scanning electron microscopy (FESEM), particle size distribution, pH measurement analysis, Fourier Transform Infrared (FTIR) spectroscopy, and X-ray diffraction (XRD). Surface functionalization was proven to improve the overall size and shape of the nanoparticles and enhance their dispersion properties, preventing coarse agglomeration among nanoparticles in general. The improved method was verified to retain its aragonite crystalline nature. Additionally, surface functionalization did not increase the size of nanoparticles throughout the modification process. This facile preparation using naturally occurring cockle shells as the main source is environmentally friendly because it provides relatively low cost of raw material source as it is abundantly available in nature and has good mineral purity content. Hence, high quality production of surface functionalized cockle shell-based calcium carbonate aragonite polymorph nanoparticles can potentially be exploited and produced on a large scale for various industrial applications, especially for biomedical purposes in the near future.
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具有表面功能化的贝壳基碳酸钙文石多晶纳米粒的合成与表征
研究了在十二烷基二甲基甜菜碱(BS-12)存在下,采用机械搅拌结合表面功能化技术合成的鸟蛤壳基碳酸钙文石多晶纳米颗粒,样品产品均匀性高,纳米颗粒分散性好。采用透射电子显微镜(TEM)、场发射扫描电子显微镜(FESEM)、粒径分布、pH测量分析、傅里叶变换红外光谱(FTIR)和x射线衍射(XRD)等手段对表面功能化的贝壳型碳酸钙文石纳米颗粒进行了表征。表面功能化可以改善纳米颗粒的整体尺寸和形状,增强其分散性能,防止纳米颗粒之间的粗团聚。经验证,改进后的方法保留了文石的结晶性质。此外,在整个修饰过程中,表面功能化并没有增加纳米颗粒的尺寸。这种简单的制备方法以自然发生的蛤壳为主要来源,是环保的,因为它提供了相对较低的原料来源,因为它在自然界中大量可用,并且具有良好的矿物纯度含量。因此,在不久的将来,高质量的表面功能化贝壳型碳酸钙文石多晶纳米颗粒有可能被大规模开发和生产,用于各种工业应用,特别是生物医学用途。
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