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首页> 外文期刊>Advanced Functional Materials >Optical Properties And Growth Aspects Of Silver Nanoprisms Produced By A Highly Reproducible And Rapid Synthesis At Room Temperature
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Optical Properties And Growth Aspects Of Silver Nanoprisms Produced By A Highly Reproducible And Rapid Synthesis At Room Temperature

机译:室温下可高度复制和快速合成的银纳米棱镜的光学性质和生长方面

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A rapid and readily reproducible seed-based method for the production of high quality silver nanoprisms in high yield is presented. The edge-length and the position of the main plasmon resonance of the nanoprisms can be readily controlled through adjustment of reaction conditions. From UV-vis spectra of solutions of the nanoprisms, the inhomogeneously broadened line width of the in-plane dipole plasmon resonance is measured and trends in the extent of plasmon damping as a function of plasmon resonance energy and nanoprism size have been elucidated. In addition, an in-depth analysis of the lamellar defect structure of silver nanoprisms is provided that confirms that the defects can lead to a transformation of the crystal structure in the vicinity of the defects. These defects can combine give rise to lamellar regions, thicker than 1 nm, that extend across the crystal, where the silver atoms are arranged in a continuous hexagonal-close-packed (hcp) structure. This hcp structure has a periodicity of 2.50 A, thus explaining the 2.50 A lattice fringes that are commonly observed in 〈111〉 oriented flat-lying nanoprisms. A new understanding of the mechanisms behind anisotropic growth in silver nanoprisms is presented.
机译:提出了一种快速且易于再现的基于种子的高产量生产高质量银纳米棱镜的方法。通过调整反应条件,可以容易地控制纳米棱镜的边缘长度和主等离子体激元共振的位置。从纳米棱镜溶液的紫外可见光谱,测量了平面内偶极等离子体激元共振的不均匀加宽的线宽,并且阐明了等离子体激振阻尼程度随等离子体共振能量和纳米棱镜尺寸的变化趋势。另外,提供了对银纳米棱镜的层状缺陷结构的深入分析,证实了缺陷可以导致缺陷附近的晶体结构的转变。这些缺陷可以结合起来,形成厚度超过1 nm的层状区域,该层状区域遍布整个晶体,其中银原子以连续的六方密堆积(hcp)结构排列。这种hcp结构的周期为2.50 A,从而解释了在<111>取向的平展纳米棱镜中通常观察到的2.50 A晶格条纹。提出了对银纳米棱镜各向异性生长机制的新认识。

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