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MICROFLUIDIC PLATFORM FOR CONTINUOUS SYNTHESIS OF NANOPARTICLES

机译:用于连续合成纳米颗粒的微流体平台

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Nanoparticles of various kind are used in numerous fields of Pharmaceutical and Biomedical Engineering thanks to their unique structural, chemical and physical properties. The common denominator for most high-end applications is the urgent need for nanoparticles with well-defined and uniform properties. For all these applications, particle nucleation and growth control play a significant role due to size and shape-depended properties. Traditionally the batch synthesis method is the most preferred way of nanoparticle preparation for its simplicity and low cost of instrumentation. However, in many instances, it is very challenging to control mixing, heat and mass transport, especially in the case of ultra-fast precipitation reactions and large- volume reaction mixture. This often leads to unwanted batch-to-batch variation in the quality of the product in terms of particle size and shape. Therefore, better methods are necessary to satisfy annually increasing demands for particles having the monodisperse size and regular shape. Nanoparticle synthesis by microfluidic devices has become one of the most explored methods in the last few years. Microfluidic synthesis promises many advantages over batch synthesis. Firstly, a large surface area to volume ratio of microchannels helps to increase mass and heat transfer in the system. Secondly, it provides higher mixing efficiency using smaller reaction volumes than batch methods. Additionally, microfluidic devices are more suitable to work at harsh conditions in comparison to the batch reactors with regards to rapid temperature and pressure changes while using toxic and explosive materials. In this work, the synthesis of silica, silver and magnetite nanoparticles will be discussed using the microfluidic platform. The goal was to compare a standard batch process with the continuous process using microfluidics of nanoparticle synthesis. The properties of synthesized nanoparticles, particle size and morphology, will be analyzed and discussed.
机译:由于其独特的结构,化学和物理性质,各种纳米粒子用于许多药物和生物医学工程领域。用于大多数高端应用的公共指党是迫切需要具有明确定义和均匀性质的纳米颗粒。对于所有这些应用,由于尺寸和形状依赖性质,粒子成核和生长控制起着重要作用。传统上,批量合成方法是纳米颗粒制备的最优选方式,其简单性和低成本的仪器。然而,在许多情况下,控制混合,热量和质量传输,特别是在超快速沉淀反应和大量反应混合物的情况下非常具有挑战性。这通常导致产品质量在粒径和形状方面的不需要的批量批量变化。因此,需要更好的方法来满足具有单分散尺寸和规则形状的粒子的每年增加的需求。微流体装置的纳米粒子合成已成为过去几年最具勘探方法之一。微流体合成承诺对批量合成的许多优点。首先,微通道的大表面积与微通道的体积比有助于增加系统中的质量和传热。其次,它使用比分批方法更小的反应体积提供更高的混合效率。另外,微流体装置更适合于与批量反应器相比,在使用毒性和爆炸材料的同时进行快速温度和压力变化,更适合于苛刻的条件下工作。在这项工作中,将使用微流体平台讨论二氧化硅,银和磁铁矿纳米粒子的合成。目标是使用纳米粒子合成的微流体的连续过程进行比较标准批量处理。将分析和讨论合成纳米颗粒,粒度和形态的合成纳米颗粒的性质。

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