Comparative Analysis of Magnesium Oxide Nanoparticles Biosynthesized from Rubber Seed Shell and Rubber Leaf Extracts

Esther U. Ikhuoria, Ita E. Uwidia, Godfrey O. Otabor, Ikhazuagbe H. Ifijen
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Abstract

Plant-mediated methods are increasingly favored for synthesizing magnesium oxide nanoparticles (MgONPs) due to their cost-effectiveness, ease of use, and eco-friendly nature compared to chemical and physical approaches. In this study, the potential of plant-derived phytochemicals as bio-reducing and capping agents in the synthesis of MgONPs was explored. Specifically, MgONPs were successfully synthesized using an aqueous extract obtained from rubber seed shells (RSS) and rubber leaves (RL). To validate the obtained MgONPs, various characterization techniques including FTIR, DLS, XRD and SEM were employed. The FTIR analysis confirmed the formation of magnesium oxide. According to DLS analysis, the average particle size of MgONPs derived from rubber seed shells was determined to be 1199 nm, while those derived from rubber leaves exhibited an average size of 44.57 nm. The X-ray Diffraction (XRD) analysis confirms a high level of crystallinity and validates the crystalline nature of both sets of synthesized nanoparticles. SEM examination revealed that the rubber seed shell-based MgONPs displayed irregular-shaped particles with a high degree of aggregation, whereas the MgONPs derived from rubber leaves exhibited a more uniform and spherical morphology. These findings highlight the efficacy of plant-mediated methods using rubber seed shells and rubber leaves extracts for synthesizing MgONPs. The characterization techniques employed in this study provided valuable insights into the structural properties of the nanoparticles. Such knowledge is crucial for further exploration and utilization of plant-mediated approaches in the synthesis of nanomaterials with desired sizes and morphologies, contributing to the development of cost-effective and environmentally friendly strategies in nanotechnology.
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橡胶籽壳与橡胶叶提取物生物合成氧化镁纳米颗粒的对比分析
与化学和物理方法相比,植物介导的方法由于其成本效益,易于使用和生态友好性而越来越受到合成氧化镁纳米颗粒(MgONPs)的青睐。本研究探讨了植物源性植物化学物质在MgONPs合成中作为生物还原和封盖剂的潜力。具体来说,利用橡胶种子壳(RSS)和橡胶叶片(RL)的水提物成功合成了MgONPs。为了验证所获得的MgONPs,采用了FTIR、DLS、XRD和SEM等多种表征技术。红外光谱分析证实了氧化镁的形成。DLS分析结果表明,橡胶种子壳中MgONPs的平均粒径为1199 nm,橡胶叶片中MgONPs的平均粒径为44.57 nm。x射线衍射(XRD)分析证实了高水平的结晶度,并验证了两组合成纳米颗粒的结晶性质。SEM检测结果表明,橡胶种子壳基MgONPs的颗粒形状不规则,聚集程度高,而橡胶叶片基MgONPs的形貌更为均匀,呈球形。这些发现强调了利用橡胶籽壳和橡胶叶提取物的植物介导方法合成MgONPs的有效性。本研究中采用的表征技术为纳米颗粒的结构特性提供了有价值的见解。这些知识对于进一步探索和利用植物介导的方法合成具有理想尺寸和形态的纳米材料至关重要,有助于开发具有成本效益和环境友好型的纳米技术策略。
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