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      Rapid Vortex Fluidics: Continuous Flow Synthesis of Amides and Local Anesthetic Lidocaine

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      Chemistry - A European Journal
      Wiley-Blackwell

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          Abstract

          Thin film flow chemistry using a vortex fluidic device (VFD) is effective in the scalable acylation of amines under shear, with the yields of the amides dramatically enhanced relative to traditional batch techniques. The optimized monophasic flow conditions are effective in ≤80 seconds at room temperature, enabling access to structurally diverse amides, functionalized amino acids and substituted ureas on multigram scales. Amide synthesis under flow was also extended to a total synthesis of local anesthetic lidocaine, with sequential reactions carried out in two serially linked VFD units. The synthesis could also be executed in a single VFD, in which the tandem reactions involve reagent delivery at different positions along the rapidly rotating tube with in situ solvent replacement, as a molecular assembly line process. This further highlights the versatility of the VFD in organic synthesis, as does the finding of a remarkably efficient debenzylation of p-methoxybenzyl amines.

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          A Graphical Journey of Innovative Organic Architectures That Have Improved Our Lives

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            Amide bond formation and peptide coupling

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              Is Open Access

              Optimising a vortex fluidic device for controlling chemical reactivity and selectivity

              A vortex fluidic device (VFD) involving a rapidly rotating tube open at one end forms dynamic thin films at high rotational speed for finite sub-millilitre volumes of liquid, with shear within the films depending on the speed and orientation of the tube. Continuous flow operation of the VFD where jet feeds of solutions are directed to the closed end of the tube provide additional tuneable shear from the viscous drag as the liquid whirls along the tube. The versatility of this simple, low cost microfluidic device, which can operate under confined mode or continuous flow is demonstrated in accelerating organic reactions, for model Diels-Alder dimerization of cyclopentadienes, and sequential aldol and Michael addition reactions, in accessing unusual 2,4,6-triarylpyridines. Residence times are controllable for continuous flow processing with the viscous drag dominating the shear for flow rates >0.1 mL/min in a 10 mm diameter tube rotating at >2000 rpm.
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                Author and article information

                Journal
                Chemistry - A European Journal
                Chem. Eur. J.
                Wiley-Blackwell
                09476539
                July 20 2015
                July 20 2015
                : 21
                : 30
                : 10660-10665
                Article
                10.1002/chem.201501785
                26095879
                57243338-598c-494f-bb15-e3ab6ca62742
                © 2015

                http://doi.wiley.com/10.1002/tdm_license_1.1

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