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Ellagic acid promoted biomimetic synthesis of shape-controlled silver nanochains

机译:鞣花酸促进形状受控的银纳米链的仿生合成

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In this work, ellagic acid (EA), a naturally occurring plant polyphenol, was utilized for the biomimetic synthesis of silver (Ag) nanoparticles, which over a period of time formed extended branched nanochains of hexagonal-shaped silver nanoparticles. It was found that EA not only has the capability of reducing silver ions, resulting in the formation of Ag nanoparticles, due to its extended polyphenolic system, but also appears to recognize and affect the Ag nanocrystal growth on the (111) face, leading to the formation of hexagon-shaped Ag nanocrystals. Initially, various Ag nanocrystal shapes were observed; however, over a longer period of time, a majority of hexagonal-shaped nanocrystals were formed. Although the exact mechanism of formation of the nanocrystals is not known, it appears that EA attaches to the silver nuclei, leading to lower surface energy of the (111) face. Further, the nanocrystals fuse together, forming interfaces among the aggregates, and, with time, those interfaces become lesser, and the nanoparticles merge together and share the same single crystallographic orientation, which leads to the formation of long elongated chains of hexagonal nanoparticles. This biomimetic approach may be developed as a green synthetic method to prepare building blocks with tunable properties for the development of nanodevices. Further, we explored the antibacterial properties and found that the tandem of EA-Ag nanochains substantially enhanced the antibacterial properties of both gram-positive and gram-negative bacteria compared to silver nanoparticles or EA alone. Additionally, the materials were also utilized for imaging of mammalian NRK (normal rat kidney) cells.
机译:在这项工作中,鞣花酸(EA),一种天然存在的植物多酚,被用于仿生合成银(Ag)纳米颗粒,该纳米颗粒在一段时间内形成了六角形银纳米颗粒的延伸的支化纳米链。发现EA不仅具有还原银离子的能力,由于其扩展的多酚体系,导致形成了Ag纳米颗粒,而且似乎可以识别并影响(111)面上的Ag纳米晶体的生长,从而导致形成六角形的Ag纳米晶体。最初,观察到各种Ag纳米晶体形状。然而,在较长的时间内,形成了大多数六边形的纳米晶体。尽管尚不知道形成纳米晶体的确切机理,但似乎EA附着在银核上,导致(111)面的表面能较低。此外,纳米晶体融合在一起,在聚集体之间形成界面,并且随着时间的流逝,这些界面变少,并且纳米粒子融合在一起并共享相同的单晶取向,这导致形成了六边形纳米粒子的长的细长链。可以将这种仿生方法开发为绿色合成方法,以制备具有可调特性的构件,以开发纳米器件。此外,我们探索了抗菌性能,发现与单独的银纳米颗粒或EA相比,串联的EA-Ag纳米链显着增强了革兰氏阳性和革兰氏阴性细菌的抗菌性能。另外,该材料还用于哺乳动物NRK(正常大鼠肾脏)细胞的成像。

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