Size and Shape Selective Classification of Nanoparticles

Powders Pub Date : 2024-05-17 DOI:10.3390/powders3020016
C. Damm, Danny Long, J. Walter, Wolfgang Peukert
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Abstract

As nanoparticle syntheses on a large scale usually yield products with broad size and shape distributions, the properties of nanoparticle-based products need to be tuned after synthesis by narrowing the size and shape distributions or via the removal of undesired fractions. The development of property-selective classification processes requires a universal framework for the quantitative evaluation of multi-dimensional particle fractionation processes. This framework must be applicable to any property and any particle classification process. We extended the well-known one-dimensional methodology commonly used for describing particle size distributions and fractionation processes to the multi-dimensional case to account for the higher complexity of the property distribution and separation functions. In particular, multi-dimensional lognormal distributions are introduced and applied to diameter and length distributions of gold nanorods. The fractionation of nanorods via centrifugation and by orthogonal centrifugal and electric forces is modeled. Moreover, we demonstrate that analytical ultracentrifugation with a multi-wavelength detector (MWL-AUC) is a fast and very accurate method for the measurement of two-dimensional particle size distributions in suspension. The MWL-AUC method is widely applicable to any class of nanoparticles with size-, shape- or composition-dependent optical properties. In addition, we obtained distributions of the lateral diameter and the number of layers of molybdenum disulfide nanosheets via stepwise centrifugation and spectroscopic evaluation of the size fractions.
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纳米粒子的尺寸和形状选择性分类
由于大规模的纳米粒子合成通常会产生尺寸和形状分布广泛的产品,因此需要在合成后通过缩小尺寸和形状分布或去除不需要的馏分来调整基于纳米粒子的产品的特性。特性选择性分类过程的开发需要一个通用框架,用于定量评估多维粒子分馏过程。这一框架必须适用于任何性质和任何颗粒分级过程。我们将常用于描述粒度分布和分馏过程的著名一维方法扩展到了多维情况,以考虑属性分布和分离函数的更高复杂性。特别是引入了多维对数正态分布,并将其应用于金纳米棒的直径和长度分布。我们模拟了纳米棒在离心力和正交离心力及电场力作用下的分馏过程。此外,我们还证明了带多波长检测器的分析超速离心法(MWL-AUC)是一种快速、非常精确的悬浮液二维粒度分布测量方法。MWL-AUC 方法广泛适用于任何一类具有尺寸、形状或成分光学特性的纳米粒子。此外,我们还通过分步离心和光谱评估粒度分数,获得了二硫化钼纳米片的横向直径和层数分布。
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