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APS -APS March Meeting 2017 - Event - Sonocrystallization---application of radiation forces from acoustic standing waves for configurable assembly

机译:APS -APS 2017年3月会议-活动-声结晶---应用声驻波辐射力进行可配置组装

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Acoustic radiation forces offer a promising approach to rapidly arrange particles across a broad range of scales, yet it remains largely unexplored compared to classical methods like centrifugation, electrophoresis, and magnetophoresis. Acoustic forces offer numerous advantages, including scalability, programmability, and the ability to manipulate particles of variable composition (i.e., without narrowly defined electromagnetic or other properties). While some groups have shown the ability to concentrate particles with ultrasonic radiation, the capabilities and limitations for precise particle assembly and morphological control remain poorly understood. Here, I will discuss our recent efforts to explore the flexibility and limitations of acoustophoresis to rapidly arrange microparticles into organized and programmable structures. In order to execute these studies, we employ a simple ``sonocrystallization chamber'' that creates multidimensional bulk acoustic standing waves to propel particles toward the pressure nodes or antinodes, depending on their contrast factor. We can thus create thousands of size-limited assemblies within minutes. We pair these experiments with simulations and theory to model the migration kinetics and assembly patterns of different particles types. I will further discuss how we have extended these results to understand the lower particle size limit for assembly in systems such as gold nanoparticles with diameters extless 200 nm. Finally, I will show how we incorporated a simple light-based crosslinking approach for stabilizing the assembly in the small particle limit (i.e., beyond the acoustic focusing limit), which might enable use in a variety of plasmonic and photonic applications.
机译:声辐射力提供了一种有前途的方法,可以在广泛的范围内快速排列粒子,但是与诸如离心,电泳和磁泳的经典方法相比,它在很大程度上仍未被探索。声力具有许多优点,包括可伸缩性,可编程性以及操纵具有可变组成的粒子的能力(即没有狭窄定义的电磁或其他特性)。尽管某些小组显示了利用超声波辐射浓缩粒子的能力,但对于精确粒子组装和形态控制的能力和局限性仍然知之甚少。在这里,我将讨论我们最近的工作,以探索声泳的灵活性和局限性,以快速将微粒排列成有组织的可编程结构。为了进行这些研究,我们采用了一个简单的``声晶化室'',它会产生多维的体声驻波,以根据粒子的对比度将粒子推向压力节点或波腹。因此,我们可以在几分钟内创建成千上万个受大小限制的程序集。我们将这些实验与模拟和理论配对,以模拟不同颗粒类型的迁移动力学和组装模式。我将进一步讨论我们如何扩展这些结果,以了解在直径不超过200 nm的金纳米颗粒等系统中组装时的较低粒径限制。最后,我将展示我们如何结合一种简单的基于光的交联方法来将组装稳定在小颗粒极限(即超出声聚焦极限)内,这可能使它可以用于各种等离子和光子应用中。

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