Impact of Two Lavender Extracts on Silver Nanoparticle Synthesis, and the Study of Nanoparticles’ Antibiofilm Properties and Their Ability to Transfer them into a Nontoxic Polymer

Micro Pub Date : 2023-11-17 DOI:10.3390/micro3040060
Lívia Mačák, O. Velgosova, S. Dolinská
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Abstract

In this work, we aimed to analyze the impact of extracts prepared from dried Lavandula angustifolia (lavender) flowers and leaves on the synthesis of silver nanoparticles (AgNPs) (wherein the shape and size of AgNPs and the efficiency of the process were analyzed) and to prove the possibility of transferring the AgNPs’ properties into a polymer matrix. An ex situ method was used to incorporate AgNPs and prepare polymer matrix composite (PVP-AgNPs) films (via casting) and fibers (via electrospinning). We used UV-vis absorption spectrophotometry, Fourier Transform Infrared Spectroscopy (FTIR), Transmission Electron Microscopy (TEM), and Scanning Electron Microscopy (SEM) to analyze and characterize the AgNPs and prepared composites. The results of FTIR analysis confirmed the presence of phytochemicals that can reduce silver ions from Ag+ to Ag0 in both extracts. The presence of spherical nanoparticles was confirmed via TEM regardless of the type of extract used. However, leaf extract caused the formation of AgNPs with a narrower size interval (an average size of 20 nm), and with higher efficiency, compared to the nanoparticles prepared using the flower extract. The nanoparticles prepared using the leaf extract were then incorporated into the polymer matrix, and thin polymer composite films and fibers were successfully prepared. The anti-biofilm activity of AgNPs colloids and prepared polymer nanocomposites against green algae Chlorella kessleri was studied. The anti-biofilm properties of the AgNPs were proved, along with the efficient transfer of their toxic properties into nontoxic polymer.
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两种薰衣草提取物对银纳米粒子合成的影响,以及纳米粒子的抗生物膜特性和将其转移到无毒聚合物中的能力研究
在这项工作中,我们旨在分析从干薰衣草(Lavandula angustifolia)花和叶中制备的提取物对银纳米粒子(AgNPs)合成的影响(其中分析了 AgNPs 的形状和尺寸以及合成过程的效率),并证明将 AgNPs 的特性转移到聚合物基质中的可能性。我们采用了一种原位法来加入 AgNPs,并制备聚合物基复合材料(PVP-AgNPs)薄膜(通过浇铸)和纤维(通过电纺丝)。我们使用紫外-可见吸收分光光度法、傅立叶变换红外光谱法(FTIR)、透射电子显微镜(TEM)和扫描电子显微镜(SEM)对 AgNPs 和制备的复合材料进行了分析和表征。傅立叶变换红外光谱分析结果证实,两种提取物中都含有能将银离子从 Ag+ 还原成 Ag0 的植物化学物质。无论使用哪种提取物,TEM 都证实了球形纳米粒子的存在。不过,与使用花提取物制备的纳米粒子相比,叶提取物形成的 AgNPs 的尺寸间隔更窄(平均尺寸为 20 nm),效率更高。然后将使用叶提取物制备的纳米颗粒与聚合物基质结合,成功制备出了聚合物复合薄膜和纤维。研究了 AgNPs 胶体和制备的聚合物纳米复合材料对绿藻 Chlorella kessleri 的抗生物膜活性。结果表明,AgNPs 具有抗生物膜特性,并能有效地将其毒性转移到无毒聚合物中。
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