Andalibi M Reza, Wokaun Alexander, Bowen Paul, Testino Andrea
Energy and Environment Research Division , Paul Scherrer Institute (PSI) , 5232 Villigen, Switzerland.
Department of Materials Science and Engineering , École Polytechnique Fedérale de Lausanne (EPFL) , Lausanne 1015 , Switzerland.
ACS Nano. 2019 Oct 22;13(10):11510-11521. doi: 10.1021/acsnano.9b04981. Epub 2019 Sep 9.
An overarching computational framework unifying several optical theories to describe the temporal evolution of gold nanoparticles (GNPs) during a seeded growth process is presented. To achieve this, we used the inexpensive and widely available optical extinction spectroscopy, to obtain quantitative kinetic data. spectra collected over a wide set of experimental conditions were regressed using the physical model, calculating light extinction by ensembles of GNPs during the growth process. This model provides temporal information on the size, shape, and concentration of the particles and any electromagnetic interactions between them. Consequently, we were able to describe the mechanism of GNP growth and divide the process into distinct genesis periods. We provide explanations for several longstanding mysteries, for example, the phenomena responsible for the purple-greyish hue during the early stages of GNP growth, the complex interactions between nucleation, growth, and aggregation events, and a clear distinction between agglomeration and electromagnetic interactions. The presented theoretical formalism has been developed in a generic fashion so that it can readily be adapted to other nanoparticulate formation scenarios such as the genesis of various metal nanoparticles.
提出了一个统一几种光学理论的总体计算框架,以描述种子生长过程中金纳米颗粒(GNP)的时间演化。为实现这一目标,我们使用了廉价且广泛可用的光学消光光谱法来获取定量动力学数据。利用物理模型对在广泛实验条件下收集的光谱进行回归分析,计算生长过程中GNP集合体的光消光。该模型提供了有关颗粒大小、形状和浓度以及它们之间任何电磁相互作用的时间信息。因此,我们能够描述GNP的生长机制,并将该过程划分为不同的起源阶段。我们对几个长期存在的谜团给出了解释,例如,GNP生长早期出现紫灰色调的现象、成核、生长和聚集事件之间的复杂相互作用,以及团聚和电磁相互作用之间的明显区别。所提出的理论形式是以通用方式发展的,因此它可以很容易地适用于其他纳米颗粒形成场景,例如各种金属纳米颗粒的起源。