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硫化物抑制金纳米棒的生长

Sulfide-Arrested Growth of Gold Nanorods.

作者信息

Zweifel Daniel A, Wei Alexander

机构信息

Department of Chemistry and the Birck Nanotechnology Center, Purdue UniVersity, 560 Oval Drive, West Lafayette, Indiana 47907-2084.

出版信息

Chem Mater. 2005 Aug 9;17(16):4256-4261. doi: 10.1021/cm0506858.

DOI:10.1021/cm0506858
PMID:17415410
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1847745/
Abstract

The growth of gold nanorods can be arrested at intermediate stages by treatment with Na(2)S, providing greater control over their optical resonances. Nanorods prepared by the seeded reduction of AuCl(4) in aqueous cetyltrimethylammonium bromide solutions in the presence of AgNO(3) typically exhibit a gradual blueshift in longitudinal plasmon resonance, over a period of hours to days. This "optical drift" can be greatly reduced by adding millimolar concentrations of Na(2)S to quench nanorod growth, with an optimized sulfur:metal ratio of 4:1. The sulfide-treated nanorods also experience a marked redshift as a function of Na(2)S concentration to produce stable plasmon resonances well into the near-infrared. Sulfide treatment permitted a time-resolved analysis of nanorod growth by transmission electron microscopy, revealing two distinct periods: an initial growth burst (t < 15 min) that generates dumbbell-shaped nanorods with flared ends and a slower phase (t > 30 min) favoring growth around the midsection, leading to nanorods with the more familiar oblate geometry. The blueshift in plasmon resonance that accompanies the dumbbell-to-oblate shape transition correlates more strongly with changes in the length-to-midsection (L/D(1)) ratio rather than the length-to-end width (L/D(2)) ratio, based on the empirical relationship introduced by El-Sayed and co-workers.

摘要

通过用Na₂S处理,金纳米棒的生长可以在中间阶段被阻止,从而对其光学共振提供更好的控制。在硝酸银存在下,通过在十六烷基三甲基溴化铵水溶液中对AuCl₄进行种子还原制备的纳米棒,其纵向等离子体共振通常会在数小时至数天的时间内逐渐发生蓝移。通过添加毫摩尔浓度的Na₂S来抑制纳米棒生长,优化硫与金属的比例为4:1,可以大大减少这种“光学漂移”。经硫化物处理的纳米棒还会随着Na₂S浓度的变化而发生明显的红移,从而在近红外区域产生稳定的等离子体共振。硫化物处理允许通过透射电子显微镜对纳米棒的生长进行时间分辨分析,揭示了两个不同的阶段:初始生长爆发期(t < 15分钟),产生两端呈喇叭状的哑铃形纳米棒;以及较慢的阶段(t > 30分钟),有利于在中间部分周围生长,导致形成更常见的扁球形几何形状的纳米棒。根据El-Sayed及其同事提出的经验关系,等离子体共振中的蓝移与哑铃形到扁球形形状转变时长度与中间部分(L/D₁)的比例变化更密切相关,而不是与长度与端部宽度(L/D₂)的比例变化相关。