Electrochemical Properties of Cyclen and Cyclam Macrocycles Bearing Ferrocenyl Pendants and Their Transition Metal Complexes

•The effect of the amine moiety on the ferrocene oxidation mechanism was investigated.•Experimental and simulated cyclic voltammograms and bulk electrolysis with product isolation were used to obtain the oxidation mechanism.•The effect of cyclen and cyclam on the ferrocene oxidation potential was in...

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Published inJournal of electroanalytical chemistry (Lausanne, Switzerland) Vol. 945; p. 117687
Main Authors Torriero, Angel A.J., Zeng, Zhanghua, Mruthunjaya, Ashwin K.V., Bond, Alan M.
Format Journal Article
LanguageEnglish
Published Elsevier B.V 15.09.2023
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ISSN1572-6657
1873-2569
DOI10.1016/j.jelechem.2023.117687

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Summary:•The effect of the amine moiety on the ferrocene oxidation mechanism was investigated.•Experimental and simulated cyclic voltammograms and bulk electrolysis with product isolation were used to obtain the oxidation mechanism.•The effect of cyclen and cyclam on the ferrocene oxidation potential was investigated.•The ability of the complexes to work as electrochemical sensors for Cu2+, Co2+, Cd2+, Zn2+, or Ni2+ ions is discussed. The ligands [R-Fc(cyclen)], [Fc(cyclen)2], [Fc(cyclam)2], [Fc2(cyclen)] and [Fc4(cyclen)] (R = -H or -CH2OH; Fc = ferrocene; cyclen = 1,4,7,10-tetraazacyclododecane; cyclam = 1,4,8,11-tetraazacyclotetradecane) and their respective Cu2+, Co2+, Cd2+, Zn2+, and Ni2+ metal complexes have been synthesised and electrochemically characterised. The voltammetry of the free ligands in a CH2Cl2/CH3CN (1:4) solvent mixture containing [Bu4N][PF6] or [Bu4N](B(C6F5)4] as the supporting electrolyte yields two closely spaced oxidation processes. The first one is Fc based, and the other is related to the interaction of the Fc with the nitrogen component. Details of the mechanism were established by studying the oxidation of N,N-dimethylaminomethylferrocene by cyclic voltammetry and bulk electrolysis with product isolation. However, cyclic voltammetries exhibit a single Fc-based reversible oxidation process when the ligands form metal complexes with Cu2+, Co2+, Cd2+, Zn2+, or Ni2+. Upon metal ion binding, an important positive shift in the reversible midpoint potential, Em, is observed. The magnitude of the shift in the Em values follows the order [Fc(cyclen)2] ≈ [Fc(cyclam)2] >> [R-Fc(cyclen)]≈ [Fc2(cyclen)] > [Fc4(cyclen)]. The ability of the ligands to work as electrochemical sensors for the mentioned cations is discussed.
ISSN:1572-6657
1873-2569
DOI:10.1016/j.jelechem.2023.117687