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微流控与声化学的融合:迈向更加绿色、高效的微声反应器。

Merging microfluidics and sonochemistry: towards greener and more efficient micro-sono-reactors.

机构信息

Mesoscale Chemical Systems Group, MESA + Research Institute, University of Twente, ME147, PO Box 217, 7500 AE, Enschede, The Netherlands.

出版信息

Chem Commun (Camb). 2012 Nov 18;48(89):10935-47. doi: 10.1039/c2cc33920j.

Abstract

Microfluidics enable the manipulation of chemical reactions using very small amounts of fluid, in channels with dimensions of tens to hundreds of micrometers; so-called microstructured devices, from which the iconic image of chips emerges. The immediate attraction of microfluidics lies in its greenness: use of small quantities of reagents and solvents, and hence less waste, a precise control of reaction conditions, integration of functionality for process intensification, safer and often faster protocols, reliable scale-up, and possibility of performing multiphase reactions. Among the limitations found in microfluidics the facile formation of precipitating products should be highlighted, and in this context, the search for efficient mass and energy transfers is a must. Such limitations have been partially overcome with the aid of ultrasound in conventional flow systems, and can now be successfully used in microreactors, which provide new capabilities. Novel applications and a better understanding of the physical and chemical aspects of sonochemistry can certainly be achieved by combining microfluidics and ultrasound. We will review this nascent area of research, paying attention to the latest developments and showing future directions, which benefit both from the existing microfluidic technology and sonochemistry itself.

摘要

微流控技术使用非常少量的流体在几十到几百微米尺寸的通道中操纵化学反应;所谓的微结构器件,从中可以看到芯片的标志性形象。微流控技术的直接吸引力在于其环保性:使用少量的试剂和溶剂,因此减少了浪费,精确控制反应条件,集成功能以实现过程强化,更安全且通常更快的方案,可靠的放大规模,以及进行多相反应的可能性。在微流控技术中发现的限制因素中,应该突出易于形成沉淀产物的问题,在这种情况下,寻找有效的质量和能量传递是必须的。借助于传统流动系统中的超声波,可以部分克服这些限制因素,并且现在可以在微反应器中成功使用,这提供了新的功能。通过将微流控技术和超声波相结合,肯定可以实现新的应用和对声化学物理和化学方面的更好理解。我们将回顾这个新兴的研究领域,关注最新的发展,并展示未来的方向,这既受益于现有的微流控技术,也受益于声化学本身。

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