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使用流动微反应器进行绿色可持续的化学合成。

Green and sustainable chemical synthesis using flow microreactors.

机构信息

Department of Synthetic and Biological Chemistry, Graduate School of Engineering, Kyoto University, Nishikyo-ku, Kyoto, 615-8510, Japan.

出版信息

ChemSusChem. 2011 Mar 21;4(3):331-40. doi: 10.1002/cssc.201000271. Epub 2010 Nov 24.

Abstract

Several features that allow flow microreactors contribute to green and sustainable chemical synthesis are presented: (1) For extremely fast reactions, kinetics often cannot be used because of the lack of homogeneity of the reaction environment when they are conducted in batch macroreactors. Better controllability, by virtue of fast mixing based on short diffusion paths in microreactors, however, leads to a higher selectivity of the products, based on kinetics considerations. Therefore, less waste is produced. (2) Reactions involving highly unstable intermediates usually require very low temperatures when they are conducted in macrobatch reactors. By virtue of short residence times, flow microreactors enable performing such reactions at ambient temperatures, avoiding cryogenic conditions and minimizing the energy required for cooling. (3) By virtue of the precise residence time control, flow microreactors allow to avoid the use of auxiliary substances such as protecting groups, enabling highly atom- and step-economical straightforward syntheses. The development of several test plants based on microreaction technology has proved that flow microreactor synthesis can be applied to the green and sustainable production of chemical substances on industrial scales. (4) Microreactor technology enables on-demand and on-site synthesis, which leads to less energy for transportation and easy recycling of substances.

摘要

以下是一些能够使流动微反应器有助于绿色和可持续化学合成的特点

(1)对于极快的反应,由于在批量宏观反应器中进行反应时反应环境缺乏均一性,因此往往无法使用动力学。然而,由于基于微反应器中短扩散路径的快速混合,微反应器具有更好的可控性,从而根据动力学考虑提高了产物的选择性,因此产生的废物更少。(2)涉及非常不稳定中间体的反应通常需要在大批次反应器中在非常低的温度下进行。由于停留时间短,流动微反应器能够在环境温度下进行此类反应,避免低温条件并最小化冷却所需的能量。(3)由于精确的停留时间控制,流动微反应器允许避免使用保护基团等辅助物质,从而实现高度原子经济性和直接合成。基于微反应技术的几个测试工厂的开发已经证明,流动微反应器合成可应用于化学物质的绿色和可持续工业规模生产。(4)微反应器技术能够按需和现场合成,从而减少运输所需的能源并便于物质的回收利用。

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