Mage Peter L, Csordas Andrew T, Brown Tyler, Klinger Daniel, Eisenstein Michael, Mitragotri Samir, Hawker Craig, Soh H Tom
Materials Department, University of California, Santa Barbara, CA, USA.
Department of Electrical Engineering, Stanford University, Stanford, CA, USA.
Nat Mater. 2019 Jan;18(1):82-89. doi: 10.1038/s41563-018-0244-9. Epub 2018 Dec 10.
The functional properties of colloidal materials can be tailored by tuning the shape of their constituent particles. Unfortunately, a reliable, general methodology for purifying colloidal materials solely based on shape is still lacking. Here we exploit the single-particle analysis and sorting capabilities of the fluorescence-activated cell sorting (FACS) instrument, a commonly used tool in biomedical research, and demonstrate the ability to separate mixtures of synthetic microparticles based solely on their shape with high purity. We achieve this by simultaneously obtaining four independent optical scattering signals from the FACS instrument to create shape-specific 'scattering signatures' that can be used for particle classification and sorting. We demonstrate that these four-dimensional signatures can overcome the confounding effects of particle orientation on shape-based characterization. Using this strategy, robust discrimination of particles differing only slightly in shape and an efficient selection of desired shapes from mixtures comprising particles of diverse sizes and materials is demonstrated.
胶体材料的功能特性可以通过调整其组成颗粒的形状来定制。不幸的是,仍然缺乏一种仅基于形状来纯化胶体材料的可靠通用方法。在这里,我们利用荧光激活细胞分选(FACS)仪器的单颗粒分析和分选能力,这是生物医学研究中常用的工具,并展示了仅基于形状以高纯度分离合成微粒混合物的能力。我们通过同时从FACS仪器获得四个独立的光学散射信号来创建特定形状的“散射特征”,这些特征可用于颗粒分类和分选。我们证明,这些四维特征可以克服颗粒取向对基于形状的表征的混杂影响。使用这种策略,展示了对形状仅略有不同的颗粒的稳健区分,以及从包含不同尺寸和材料颗粒的混合物中有效选择所需形状的能力。