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Updated: Jul 23, 2025

Hydrogen Production and Utilization in a Membrane Reactor
Published on: March 10, 2023
Electrochemical hydrogen isotope exchange of amines controlled by alternating current frequency
Nibedita Behera1, Disni Gunasekera1, Jyoti P Mahajan1
1Department of Chemistry, Wayne State University, Detroit, Michigan 48202, USA. long.luo@wayne.edu.
Abstract:
Here, we report an electrochemical protocol for hydrogen isotope exchange (HIE) at α-C(sp3)-H amine sites. Tetrahydroisoquinoline and pyrrolidine are selected as two model substrates because of their different proton transfer (PT) and hydrogen atom transfer (HAT) kinetics at the α-C(sp3)-H amine sites, which are utilized to control the HIE reaction outcome at different applied alternating current (AC) frequencies. We found the highest deuterium incorporation for tetrahydroisoquinolines at 0 Hz (i.e., under direct current (DC) electrolysis conditions) and pyrrolidines at 0.5 Hz. Analysis of the product distribution and D isotope incorporation at different frequencies reveals that the HIE of tetrahydroisoquinolines is limited by its slow HAT, whereas the HIE of pyrrolidines is limited by the overoxidation of its α-amino radical intermediates. The AC-frequency-dependent HIE of amines can be potentially used to achieve selective labeling of α-amine sites in one drug molecule, which will significantly impact the pharmaceutical industry.
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