Department of Chemistry, State University of New York at Binghamton, Binghamton, New York 13902, USA.
Langmuir. 2010 Aug 17;26(16):13622-9. doi: 10.1021/la1019058.
This article describes the findings of an investigation of the aggregative growth mechanism for the formation of gold nanoparticles in aqueous solutions under ambient conditions with high monodispersity (2% RSD) over a wide range of particle sizes (10-100 nm). The utilization of the gold nanoparticles synthesized by this simple, reproducible growth mechanism has recently been demonstrated for establishing the size correlation for the surface plasmon resonance optical and surface-enhanced Raman scattering spectroscopic properties. The particle size, morphology, and optical properties of the nanoparticles produced at different stages of the growth processes were determined as a function of control parameters such as the reaction time and seed/precursor concentrations. The results have allowed us to establish a quantitative correlation between the growth size and the seed/precursor concentrations for the precise control of nanoparticle sizes. The kinetic measurements have demonstrated a polycrystalline character for the grown particles, a bimodal size distribution in the early stage of growth, sigmoidal kinetic behavior for the growth, and a correlation of the nucleation parameters with the particle size and distribution. These findings provided important indicators for the operation of an aggregative growth mechanism in the particle size growth and have important implications in understanding interparticle aggregation and coalescence in nanoparticle formation and growth under similar conditions.
本文描述了在环境条件下,利用高单分散性(2%RSD)和较宽粒径范围(10-100nm)的金纳米粒子的聚集生长机制,在水溶液中形成金纳米粒子的研究结果。最近,已经证明了利用这种简单、可重复的生长机制合成的金纳米粒子在建立表面等离子体共振光学和表面增强拉曼散射光谱特性的尺寸相关性方面具有重要应用。通过控制参数(如反应时间和种子/前体浓度)的变化,确定了不同生长阶段所生成的纳米粒子的粒径、形貌和光学性质。研究结果为精确控制纳米粒子的尺寸提供了生长尺寸与种子/前体浓度之间的定量关系。动力学测量结果表明,所生长的粒子具有多晶特性,在生长的早期阶段存在双峰尺寸分布,生长呈现 S 型动力学行为,并且成核参数与粒子尺寸和分布相关。这些发现为理解在类似条件下的纳米粒子形成和生长过程中的颗粒间聚集和聚结现象提供了重要的指标,对理解聚集生长机制在粒径生长中的作用具有重要意义。