首页> 外文会议>IMAPS/ACerS International Conference and Exhibition on Ceramic Interconnect and Ceramic Microsystems Technologies >LTCC-3D FLOW FOCUSING FLUIDIC MICROREACTOR FOR NANOPARTICLE FABRICATION AND PRODUCTION SCALE-OUT
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LTCC-3D FLOW FOCUSING FLUIDIC MICROREACTOR FOR NANOPARTICLE FABRICATION AND PRODUCTION SCALE-OUT

机译:用于纳米颗粒制备和生产规模扩大的LTCC-3D流聚焦射流微反应器

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Miniaturization of chemical processes is becoming a must for green chemistry and sustainable industry processes, so technological research in this direction is well received. Continuous microreactor systems hold many potential benefits over batch reactors allowing: high surface-to-volume ratio, fine adjustment of chemical reaction residence times, small thermal inertia and fast changes in temperature. Advantages of multilayer green ceramics for microprocess applications include: LTCC substrate is chemically inert to most solvents, it has a high contact angle, presents low thermal coefficient of expansion, can withstand high operational temperatures and high internal pressures. For these reasons, LTCC-based microsystem technologies allow the implementation of different unitary operations for chemical process, making it an enabling technology for the miniaturization of chemical processes. In fact, recently LTCC microfluidic reactors have been used to produce micro and nanoparticles with excellent control of size distribution and morphology. The present work provides a report on the performance of a 3D LTCC flow focusing Microfluidic reactor designed to fabricate Nanoparticles using nano precipitation through an anti-solvent, with electric potential size tuning. We also implement an approach to nanoparticle production scale-out.
机译:化学过程的小型化正成为绿色化学和可持续工业过程的必要条件,因此这方面的技术研究受到广泛欢迎。与间歇式反应器相比,连续式微反应器系统具有许多潜在优势:高的表面体积比、化学反应停留时间的微调、小的热惯性和快速的温度变化。用于微处理应用的多层绿色陶瓷的优点包括:LTCC基板对大多数溶剂具有化学惰性,接触角高,热膨胀系数低,能够承受高工作温度和高内部压力。基于这些原因,基于LTCC的微系统技术允许对化学过程实施不同的单一操作,使其成为化学过程小型化的一种使能技术。事实上,最近LTCC微流控反应器已被用于生产微米和纳米颗粒,并对尺寸分布和形貌进行了极好的控制。本研究报告了一种3D LTCC流动聚焦微流控反应器的性能,该反应器设计用于通过反溶剂的纳米沉淀制备纳米颗粒,电位大小可调。我们还实施了一种纳米颗粒生产规模扩大的方法。

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