Centre for Advanced Intelligent Materials, Universiti Malaysia Pahang Al-Sultan Abdullah, Lebuhraya Tun Khalil Yaakob, 26300, Gambang, Pahang, Malaysia.
Faculty of Manufacturing and Mechatronics Engineering Technology, Universiti Malaysia Pahang Al-Sultan Abdullah, 26600, Pekan, Pahang, Malaysia.
Sci Rep. 2024 Aug 10;14(1):18596. doi: 10.1038/s41598-024-69632-9.
Tannic acid (TA) has been reported as an efficient plant-based compound with inhibitory activity against viruses and bacteria. The combination of TA with Zinc Oxide (ZnO) nanostructures with ZnO is one of the most widely used nanoparticles for antimicrobial properties, have not yet fully elucidate especially their mechanisms of overall physicochemical and antimicrobial actions. Hence, to observe the influence of TA adsorption on ZnO, the investigations on the TA concentration and the effect of pH towards the physicochemical, optical and antimicrobial properties are demonstrated. The pure ZnO are synthesised via the chemical reduction method and the ZnO-TA nanostructures are further prepared using the dropwise methods to form variations of pH samples, which causes the formation of different mean particle size distribution, . The findings reveal that the performance of physicochemical and optical properties of pure ZnO and ZnO-TA are different due to the wrapped layers of TA which change the charged surface of all the particles. The protonation reactions yield strong pH dependence (pH 3 and 5), with uptake performance becoming more dominant at higher TA concentration loading (pH 3). The detailed optical energy bandgap and Urbach energy that concluded the nanoparticle growth and disorder condition of produced particles are presented. For antimicrobial efficiency, ZnO-TA shows improved effectiveness in growth inhibitions of S. aureus 99.69% compared to pure ZnO nanostructure (99.39%). This work reveals that the TA concentration increases the overall performance, and the discussion gives added support to their potential performance related to the field of ZnO compound.
单宁酸(TA)已被报道为一种有效的植物基化合物,具有抑制病毒和细菌的活性。单宁酸(TA)与氧化锌(ZnO)纳米结构的结合是最广泛使用的纳米抗菌材料之一,但它们的整体物理化学和抗菌作用机制尚未完全阐明。因此,为了观察 TA 吸附对 ZnO 的影响,研究了 TA 浓度和 pH 值对物理化学、光学和抗菌性能的影响。纯 ZnO 是通过化学还原法合成的,而 ZnO-TA 纳米结构是通过滴涂法进一步制备的,以形成不同 pH 值样品的变化,从而导致不同的平均粒径分布。研究结果表明,由于 TA 的包裹层改变了所有颗粒的带电表面,纯 ZnO 和 ZnO-TA 的物理化学和光学性能表现不同。质子化反应表现出很强的 pH 依赖性(pH3 和 5),在较高的 TA 浓度负载下(pH3),吸收性能变得更加主导。还介绍了详细的光学能带隙和 Urbach 能,这些能总结了纳米颗粒的生长和产生颗粒的无序状态。在抗菌效率方面,与纯 ZnO 纳米结构(99.39%)相比,ZnO-TA 对金黄色葡萄球菌的生长抑制率提高了 99.69%。这项工作表明,TA 浓度提高了整体性能,讨论为它们在 ZnO 化合物领域的潜在性能提供了额外的支持。