Department of Chemistry, University of Engineering and Technology, Lahore 54890, Pakistan.
Biomedical Engineering Department, Stevens Institute of Technology, Hoboken, NJ 07030, USA.
Int J Mol Sci. 2023 Sep 25;24(19):14527. doi: 10.3390/ijms241914527.
Continuous microwave-assisted flow synthesis has been used as a simple, more efficient, and low-cost route to fabricate a range of nanosized (<100 nm) strontium-substituted calcium phosphates. In this study, fine nanopowder was synthesized via a continuous flow synthesis with microwave assistance from the solutions of calcium nitrate tetrahydrate (with strontium nitrate as Sr ion source) and diammonium hydrogen phosphate at pH 10 with a time duration of 5 min. The morphological characterization of the obtained powder has been carried out by employing techniques such as transmission electron microscopy, X-ray diffraction, and Brunauer-Emmett-Teller surface area analysis. The chemical structural analysis to evaluate the surface properties was made by using X-ray photoelectron spectroscopy. Zeta potential analysis was performed to evaluate the colloidal stability of the particles. Antimicrobial studies were performed for all the compositions using four bacterial strains and an opportunistic human fungal pathogen . It was found that the nanoproduct with high strontium content (15 wt% of strontium) showed pronounced antibacterial potential against while it completely arrested the fungal growth after 48 h by all of its concentrations. Thus the synthesis strategy described herein facilitated the rapid production of nanosized Sr-substituted CaPs with excellent biological performance suitable for a bone replacement application.
连续微波辅助流动合成已被用作制造各种纳米级(<100nm)锶取代的磷酸钙的简单、更有效和低成本的方法。在这项研究中,通过连续流动合成,在微波辅助下,从四水硝酸钙(以硝酸锶作为 Sr 离子源)和磷酸二氢铵的溶液中,在 pH 值为 10 的条件下,以 5 分钟的时间持续时间,合成了细纳米粉末。采用透射电子显微镜、X 射线衍射和 Brunauer-Emmett-Teller 比表面积分析等技术对所得粉末的形态特征进行了表征。采用 X 射线光电子能谱对化学结构分析进行了表面性质评估。采用zeta 电位分析评估了颗粒的胶体稳定性。使用四种细菌菌株和一种机会性人真菌病原体对所有组合物进行了抗菌研究。结果发现,高锶含量(15wt%锶)的纳米产物对 表现出明显的抗菌潜力,而其所有浓度在 48 小时后完全阻止了真菌生长。因此,本文所述的合成策略促进了具有优异生物性能的纳米级 Sr 取代 CaPs 的快速生产,适用于骨替代应用。