Issue 6, 2024

Thermal/photochemical micro-flow probe system for direct C–H bond functionalization of biologically active molecules

Abstract

Over the past few decades, many solar radiation (heat + light)-based reactions have been developed to allow utilization of thermal/light energy to facilitate chemical reactions. However, fluctuating light intensity, clouds, night, and global location render such system less efficient (approximately 33%, being usable for only 8 h out of 24 h). Radiation-induced direct C–H activation with aqueous ammonia is rarely reported. Herein, we report an innovative approach that merges a solar tracker with the artificial-radiation-induced in situ generation of explosive diazo-compounds and is further extended to N–H insertion into biologically active molecules.

Graphical abstract: Thermal/photochemical micro-flow probe system for direct C–H bond functionalization of biologically active molecules

Supplementary files

Article information

Article type
Communication
Submitted
15 Feb 2024
Accepted
02 May 2024
First published
02 May 2024

React. Chem. Eng., 2024,9, 1313-1319

Thermal/photochemical micro-flow probe system for direct C–H bond functionalization of biologically active molecules

A. Rana, R. Chauhan and A. K. Singh, React. Chem. Eng., 2024, 9, 1313 DOI: 10.1039/D4RE00083H

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