Modular Cascade of Flow Reactors: Continuous Flow Synthesis of Water-Insoluble Diazo Dyes in Aqueous System.

ChemSusChem

School of Chemistry, State Key Laboratory of Fine Chemicals, Frontier Science Center for Smart Materials, Dalian Key Laboratory of Intelligent Chemistry, Dalian University of Technology, Dalian, 116024, China.

Published: October 2024

AI Article Synopsis

  • - Continuous flow synthesis is essential for dye production, aiming to reduce variations seen in batch processes while addressing challenges in synthesizing water-insoluble dyes in aqueous systems that can cause clogging.
  • - The study successfully synthesized azo dyes using optimized flow reactor modules and a combination of a continuous flow microreactor with a continuous stirred tank reactor, achieving a 99.5% yield and 98.6% purity.
  • - Scaling up the process increased production rates significantly while maintaining quality, providing a robust method for continuous flow synthesis of water-insoluble dyes, with broad applicability to various reaction types.

Article Abstract

Continuous flow synthesis is pivotal in dye production to address batch-to-batch variations. However, synthesizing water-insoluble dyes in an aqueous system poses a challenge that can lead to clogging. This study successfully achieved the safe and efficient synthesis of azo dyes by selecting and optimizing flow reactor modules for different reaction types in the two-step reaction and implementing cascade cooperation. Integrating continuous flow microreactor with continuous stirred tank reactor (CSTR) enabled the continuous flow synthesis of Sudan Yellow 3G without introducing water-soluble functional groups or using organic solvents to enhance solubility. Optimizing conditions (acidity/alkalinity, temperature, residence time) within the initial modular continuous flow reactor resulted in a remarkable 99.5% isolated yield, 98.6 % purity, and a production rate of 2.90 g h. Scaling-up based on different reactor module characteristics further increased the production rate to 74.4 g h while maintaining high yield and purity. The construction of this small 3D-printing modular cascaded reactor and process scaling-up provide technical support for continuous flow synthesis of water-insoluble dyes, particularly high-market-share azo dyes. Moreover, this versatile methodology proves applicable to continuous flow processes involving various homogeneous and heterogeneous reaction cascades.

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Source
http://dx.doi.org/10.1002/cssc.202400413DOI Listing

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