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Influence of Magnetic Fields on Electrochemical Reactions of Redox Cofactor Solutions
Author(s) -
Park Jimin,
Koehler Florian,
Varnavides Georgios,
Antonini MarcJoseph,
Anikeeva Polina
Publication year - 2021
Publication title -
angewandte chemie international edition
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.831
H-Index - 550
eISSN - 1521-3773
pISSN - 1433-7851
DOI - 10.1002/anie.202106288
Subject(s) - redox , cofactor , chemistry , electrochemistry , half reaction , flavin group , flavin mononucleotide , chemical physics , inorganic chemistry , enzyme , electrode , organic chemistry
Redox cofactors mediate many enzymatic processes and are increasingly employed in biomedical and energy applications. Exploring the influence of external magnetic fields on redox cofactor chemistry can enhance our understanding of magnetic‐field‐sensitive biological processes and allow the application of magnetic fields to modulate redox reactions involving cofactors. Through a combination of experiments and modeling, we investigate the influence of magnetic fields on electrochemical reactions in redox cofactor solutions. By employing flavin mononucleotide (FMN) cofactor as a model system, we characterize magnetically induced changes in Faradaic currents. We find that radical pair intermediates have negligible influence on current increases in FMN solution upon application of a magnetic field. The dominant mechanism underlying the observed current increases is the magneto‐hydrodynamic effect. We extend our analyses to other diffusion‐limited electrochemical reactions of redox cofactor solutions and arrive at similar conclusions, highlighting the opportunity to use this framework in redox cofactor chemistry.

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