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Multiphase biotransformations in microstructured reactors: opportunities for biocatalytic process intensification and smart flow processing

机译:微结构反应器中的多相生物转化:生物催化过程强化和智能流处理的机会

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摘要

Enzymes are gaining increased importance as highly selective catalysts for green chemical synthesis. Multiphase microreaction systems are emerging tools for the development of enzyme-catalysed transformations involving two or more partly immiscible fluids in continuous flow. Mass transfer intensification due to miniaturisation of the flow dimensions and the associated enlargement of the interfacial area presents a powerful approach of effective reaction rate enhancement and thus reactor productivity increase for smart flow bioprocess-ing. Use of microstructured flow reactors for the study of multiphase (gas-liquid, liquid-liquid) biocatalytic conversions is reviewed. Multiphase flow characterisation based on dimensionless scaling parameters and flow-regime categorisation is presented with emphasis on the different flows applied to experimental studies of enzymatic reactions. Development of instrumented microsystems, flow instabilities, fast inactivation of biocatalysts and low conversion rates are problems often encountered with biotransformation under multiphase flow conditions. Key parameters controlling reaction performance are discussed along with some guidelines for design of scalable multiphase biocatalytic microreactors. Opportunities for biocatalytic process intensification are revealed in examples from fine chemical and materials synthesis.
机译:酶作为绿色化学合成的高选择性催化剂正变得越来越重要。多相微反应系统是用于开发酶催化转化的新兴工具,该转化涉及连续流动的两种或更多种部分不混溶的流体。由于流动尺寸的最小化和相关联的界面面积的扩大而引起的传质强化,是有效提高反应速率并因此提高反应器生产率以进行智能流动生物处理的有效方法。综述了微结构流动反应器在多相(气-液,液-液)生物催化转化研究中的应用。提出了基于无因次缩放参数和流态分类的多相流表征,重点是应用于酶反应实验的不同流。仪器化微系统的开发,流动不稳定性,生物催化剂的快速失活和低转化率是多相流动条件下生物转化经常遇到的问题。讨论了控制反应性能的关键参数,以及一些可扩展的多相生物催化微反应器设计指南。精细化学和材料合成的实例揭示了生物催化过程强化的机会。

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