Vasileiadis Thomas, Schöttle Marius, Theis Maximilian, Retsch Markus, Fytas George, Graczykowski Bartlomiej
Faculty of Physics, Adam Mickiewicz University, Uniwersytetu Poznanskiego 2, Poznan, 61-614, Poland.
Department of Chemistry, Physical Chemistry I, University of Bayreuth, Universitätsstr. 30, 95447, Bayreuth, Germany.
Small Methods. 2025 Mar;9(3):e2400855. doi: 10.1002/smtd.202400855. Epub 2024 Aug 13.
Colloidal glasses (CGs) made of polymer (polymethylmethacrylate) nanoparticles are promising metamaterials for light and sound manipulation, but fabrication imperfections and fragility can limit their functionality and applications. Here, the vibrational mechanical modes of nanoparticles are probed to evaluate the nanomechanical and morphological properties of various CGs architectures. Utilizing the scanning micro-Brillouin light scattering (µ-BLS), the effective elastic constants and nanoparticles' sizes is determined as a function of position in a remote and non-destructive manner. This method is applied to CG mesostructures with different spatial distributions of their particle size and degree of order. These include CGs with single-sized systems, binary mixtures, bilayer structures, continuous gradient structures, and gradient mixtures. The microenvironments govern the local mechanical properties and highlight how the granular mesostructure can be used to develop durable functional polymer colloids. A size effect is revealed on the effective elastic constant, with the smallest particles and ordered assemblies forming robust structures, and classify the various types of mesoscale order in terms of their mechanical stiffness. The work establishes scanning µ-BLS as a tool for mapping elasticity, particle size, and local structure in complex nanostructures.
由聚合物(聚甲基丙烯酸甲酯)纳米颗粒制成的胶体玻璃(CGs)是用于光和声操纵的有前途的超材料,但制造缺陷和易碎性会限制其功能和应用。在此,对纳米颗粒的振动机械模式进行探测,以评估各种CGs结构的纳米力学和形态学特性。利用扫描微布里渊光散射(µ-BLS),以远程和非破坏性的方式确定有效弹性常数和纳米颗粒的尺寸作为位置的函数。该方法应用于具有不同粒径空间分布和有序度的CG介观结构。这些包括具有单尺寸系统、二元混合物、双层结构、连续梯度结构和梯度混合物的CGs。微观环境决定了局部力学性能,并突出了颗粒介观结构如何用于开发耐用的功能性聚合物胶体。揭示了有效弹性常数上的尺寸效应,最小的颗粒和有序组装形成了坚固的结构,并根据其机械刚度对各种类型的介观尺度有序进行了分类。这项工作将扫描µ-BLS确立为一种用于绘制复杂纳米结构中的弹性、粒径和局部结构的工具。