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A recent article by researchers at the Flow Chemistry research group led by Prof. Timothy Noël has been highlighted as a Hot Paper in the journal Angewandte Chemie. It provides a prime example of how simple kinetic diagnostics can guide photochemical process intensification, by identifying the dominant limitations governing reaction performance. The paper demonstrates how the use of continuous flow chemistry can significantly improve efficiency and scalability.
Photochemical methodologies are typically optimized for yield. Yet yield alone provides limited insight into scalability. Image: HIMS / ANIE.

Beyond improving productivity and energy efficiency, the research by PhD students Jasper Schuurmans and Prakash Tiwari illustrates how integrating kinetic diagnostics into methodology development provides a practical framework for designing scalable photochemical processes.

The focus of the research was on photochemical Minisci alkylation of phenanthridine with ethane. Initially, developing this process with yield as the main objective led to ethane pressures of over 50 bar both in a batch and a flow reactor. Then, systematic screening of pressure, mixing, light intensity, and temperature revealed the controlling transport and kinetic phenomena, enabling targeted engineering interventions and reactor selection.

The resulting workflow guided the transition from batch to continuous flow and ultimately gram-scale synthesis, achieving a production rate of 19 g day−1 while operating under substantially less demanding conditions than the original methodology. By improving gas–liquid mass transfer and photon utilisation in continuous flow, the process could be operated at around 7 bar while achieving substantially higher productivity.

Paper detais

J. H. A. Schuurmans, P. C. Tiwari, and T. Noël: Guiding Photochemical Process Intensification Through Kinetic Diagnostics. Angewandte Chemie International Edition (2026), e2620716. DOI: 10.1002/anie.2620716

See also

Flow chemistry research group