Continuous flow chemistry as a process intensification tool is well known. However, its ability to enable chemists to perform reactions which are not possible in batch is less well studied or understood. Here we present an example, where a new reactivity pattern and extended reaction scope has been achieved by transferring a reaction from batch mode to flow. This new reactivity can be explained by suppressing back mixing and precise control of temperature in a flow reactor set up.EPSRC/EP/F069685/1EPSRC/ EP/F069685/1Fonds der Chemischen Industri
A key aim of biocatalysis is to mimic the ability of eukaryotic cells to carry out multistep cascade...
Flow reactor technology represents one of the enabling technologies introduced in the last decade to...
In the field of organic synthesis, the advent of flow chemistry and flow microreactor technology rep...
The use of flow reactors in biocatalysis has increased significantly in recent years. Chemists have ...
Continuous flow reactors are enabling tools that can significantly benefit chemical reactions, espec...
Flow chemistry is typically used to enable challenging reactions which are difficult to carry out in...
Continuous flow systems offer unique benefits in the generation and manipulation of sensitive reacti...
The frustrations of precipitation, fouling and blockages of liquid-based flow reactors is familiar t...
Driven by the economics of scale, the size of reaction vessels as the major processing apparatus of ...
Continuous flow synthesis of fine chemicals has successfully advanced from an academic niche area to...
The generation and use of reactive intermediates is well suited to continuous flow processing owing ...
Many advantages have been demonstrated for continuous flow chemistry in comparison with batch chemis...
Ten essentials of synthesis in the flow mode, a new enabling technology in organic chemistry, are hi...
Continuous-flow micro- and mesofluidic reactors come with inherent properties that can be advantageo...
The efficacy, safety, and scale-up of several chemical rearrangements remain unsolved problems due t...
A key aim of biocatalysis is to mimic the ability of eukaryotic cells to carry out multistep cascade...
Flow reactor technology represents one of the enabling technologies introduced in the last decade to...
In the field of organic synthesis, the advent of flow chemistry and flow microreactor technology rep...
The use of flow reactors in biocatalysis has increased significantly in recent years. Chemists have ...
Continuous flow reactors are enabling tools that can significantly benefit chemical reactions, espec...
Flow chemistry is typically used to enable challenging reactions which are difficult to carry out in...
Continuous flow systems offer unique benefits in the generation and manipulation of sensitive reacti...
The frustrations of precipitation, fouling and blockages of liquid-based flow reactors is familiar t...
Driven by the economics of scale, the size of reaction vessels as the major processing apparatus of ...
Continuous flow synthesis of fine chemicals has successfully advanced from an academic niche area to...
The generation and use of reactive intermediates is well suited to continuous flow processing owing ...
Many advantages have been demonstrated for continuous flow chemistry in comparison with batch chemis...
Ten essentials of synthesis in the flow mode, a new enabling technology in organic chemistry, are hi...
Continuous-flow micro- and mesofluidic reactors come with inherent properties that can be advantageo...
The efficacy, safety, and scale-up of several chemical rearrangements remain unsolved problems due t...
A key aim of biocatalysis is to mimic the ability of eukaryotic cells to carry out multistep cascade...
Flow reactor technology represents one of the enabling technologies introduced in the last decade to...
In the field of organic synthesis, the advent of flow chemistry and flow microreactor technology rep...