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Self-assembly of polystyrene nanoparticles induced by ice templating

机译:冰模板诱导聚苯乙烯纳米粒子的自组装

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An investigation was performed to develop a facile route, named as ice templating, for large scale of three-dimensional assembling of polystyrene nanoparticles. The organic nanoparticles were assembled into a macroscopic subject with sophisticated three-dimensional microstructure, induced by growing ice crystals in freezing process of particle suspension. By controlling freezing direction, freezing rate, and particle concentration in suspension, various interesting microstructures were prepared, including three-dimensional connected porous lamellas, bundles of ribbons, and fibers with uniform diameter (~1.5μm), high aspect ratio, and same orientation. Freezing direction is the key factor to control the assembling direction of particles, while, freezing rate and particle concentration are important parameters which affect morphology and size of microstructures. On the other hand, the route of ice templating has many advantages, including environmental friendly, low cost, high output and universality. Other materials, such as metal and semiconductor nanoparticles, could also be used in our platform for preparation of smart materials and structures. It is anticipated that by this simple approach, various functional nanoparticles would be efficiently assembled into macroscopic subject with sophisticated microstructures which offer synergistic, optimized properties of individual zero-dimensional elements, and hence, the derived composite materials or structures could implement desired functions with better performance.
机译:进行了研究以开发用于大规模进行聚苯乙烯纳米粒子的三维组装的称为冰模板化的简便路线。有机纳米颗粒被组装成具有复杂的三维微观结构的宏观主体,这是由于在颗粒悬浮液的冷冻过程中生长冰晶而引起的。通过控制冷冻方向,冷冻速度和悬浮液中的颗粒浓度,制备了各种有趣的微观结构,包括三维连接的多孔薄片,带状束和直径均匀(〜1.5μm),高长宽比和相同方向的纤维。冷冻方向是控制颗粒聚集方向的关键因素,而冷冻速度和颗粒浓度是影响组织形态和尺寸的重要参数。另一方面,制冰的途径具有许多优点,包括环保,低成本,高产量和通用性。其他材料,例如金属和半导体纳米粒子,也可以在我们的平台上用于制备智能材料和结构。可以预期,通过这种简单的方法,各种功能的纳米颗粒将被有效地组装成具有复杂微观结构的宏观主体,这些微观结构可为单个零维元素提供协同,优化的特性,因此,衍生的复合材料或结构可以更好地实现所需的功能。表现。

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