Process intensification and kinetic investigation of solvent-free photoisomerization of norbornadiene to quadricyclane using photomicroreactors

Abstract

The photochemical transformations under solvent-free conditions provide a gateway towards sustainable and green chemistry. In this work, we established a continuous-flow photochemical system with a capability of automatically switching between different capillary microreactors and synthesized quadricyclane from norbornadiene under solvent-free conditions at near-unity conversion and yield in short residence times and low photosensitizer loading. Various parameters such as photocatalyst loading, capillary size, geometry and configuration were investigated to optimize the quadricyclane yield and selectivity. We developed an updated kinetic model for this solvent-free reaction system and validated its zero-order kinetics by varying light intensity, initial NBD concentration and photosensitizer. This kinetic model was also validated under double-side irradiation conditions that involved the presence of reflecting mirror. Computational fluid dynamics (CFD) simulations were performed to characterize the light intensity distribution, and the shape and size of the capillary microreactor were integrated into the reaction rate equation as an auxiliary variable of light intensity to define the effective specific surface area. Moreover, the scope of linear correlations between effective surface area and apparent rate constants was extended for chip-based glass microreactors. Finally, based on the reaction rate equation, we designed and tested a reactor with high production capacity, which can achieve a daily output of 3 kg of quadricyclane.

Supplementary files

Article information

Article type
Paper
Submitted
27 ៤ 2025
Accepted
14 ៧ 2025
First published
15 ៧ 2025

React. Chem. Eng., 2025, Accepted Manuscript

Process intensification and kinetic investigation of solvent-free photoisomerization of norbornadiene to quadricyclane using photomicroreactors

Y. Wang, M. Pasha, Y. Ma, G. Qian, M. Shang and Y. Su, React. Chem. Eng., 2025, Accepted Manuscript , DOI: 10.1039/D5RE00188A

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