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Application of Gas-Expanded Liquids for Nanoparticle Processing: Experiment and Theory

机译:气体膨胀液体纳米粒子加工的应用:实验与理论

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The numerous contributions to this ACS symposium series describe in detail the unique attributes of Gas eXpanded Liquids ( GXLs) which provide for a novel class of solvents. Our contribution has applied GXLs as a processing medium for the fractionation and deposition of metallic nanoparticles (Pt, Pd, Ag, Au) and quantum dots (CdSe/ZnS). The tunable nature of the GXLs provides advantages over conventional solvents, and enables rapid, precise, and scalable size-dependant fractionation of nanoparticles into uniform populations (less than ± 0.5 nm in diameter). The wide range of accessible solvent strengths and facile removal of the CO_2, substantially reduces the amount of solvent needed for conventional anti-solvent size fractionation techniques and facilitates solvent recycling. We have also taken advantage of the reduced surface tension and interfacial forces exhibited by GXLs to produce wide-area, low defect nanoparticle arrays. Each of these nanoparticle processing applications is governed by the inter-particle interactions; dispersive and steric repulsion forces, resulting from the solvation forces between the nanoparticle stabilizing ligands and CO_2 expanded liquid medium. To better understand this system, we have developed an interaction energy modeling approach to determine the interparticle attractive and repulsive forces that control nanoparticle dispersibility through variations in the properties of the GXL medium.
机译:此ACS论文集系列的大量贡献详细描述气体的独特属性膨胀液体(GXLs),其提供了一类新的溶剂。我们的贡献已申请GXLs作为金属纳米颗粒(铂,钯,银,金)和量子点(的CdSe /硫化锌)的分馏和沉积的处理平台。所述GXLs的可调性质提供优于常规溶剂,并且使纳米粒子成均匀群体的快速,精确的和可伸缩的大小依赖分馏(小于±0.5纳米直径)。广泛访问的溶剂的优点和容易除去CO_2的,显着地减少所需的常规的抗溶剂大小分级分离技术溶剂的量并且有利于溶剂再循环。我们还采取缩小表面张力的优点和界面力通过GXLs表现出以产生广域,低缺陷的纳米颗粒阵列。这些纳米颗粒处理应用中的每个是通过粒子间的相互作用支配;色散和空间排斥力,从纳米颗粒稳定配体和CO_2之间的溶剂化力产生膨胀的液体介质。为了更好地理解这个系统,我们已经开发了一个互动能源建模方法来确定颗粒间的吸引力和排斥力,通过在GXL介质的性质变化控制纳米粒子的分散性。

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