4.7 Article

Study of the Electrochemical Behavior of N-Substituted-4-Piperidones Curcumin Analogs: A Combined Experimental and Theoretical Approach

期刊

出版社

MDPI
DOI: 10.3390/ijms232315043

关键词

curcumin; electrochemistry; DFT; curcuminoids; piperidones; benzyl derivatives

资金

  1. FONDECYT [1221874, 11170142]
  2. NLHPC [ECM-02]
  3. [ACT210097-ANID]

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This study investigated the electrochemical behavior of N-methyl and N-benzyl-4-piperidone curcumin analogs experimentally and theoretically. Results showed different outcomes in the two compounds during the two-electron irreversible oxidation process, with M06 DFT calculations providing more accurate predictions of oxidation potentials.
The electrochemical behavior of N-methyl- and N-benzyl-4-piperidone curcumin analogs were studied experimentally and theoretically. The studied compounds present different substituents at the para position in the phenyl rings (-H, -Br, -Cl, -CF3, and -OCH3). We assessed their electrochemical behavior by differential pulse and cyclic voltammetry, while we employed density functional theory (DFT) M06 and M06-2x functionals along with 6-311+G(d,p) basis set calculations to study them theoretically. The results showed that compounds suffer a two-electron irreversible oxidation in the range of 0.72 to 0.86 V, with surface concentrations ranging from 1.72 x 10(-7) to 5.01 x 10(-7) mol/cm(2). The results also suggested that the process is diffusion-controlled for all compounds. M06 DFT calculations showed a better performance than M06-2x to obtain oxidation potentials. We found a good correlation between the experimental and theoretical oxidation potential for N-benzyl-4-piperidones (R-2 = 0.9846), while the correlation was poor for N-methyl-4-piperidones (R-2 = 0.3786), suggesting that the latter suffer a more complex oxidation process. Calculations of the BDEs for labile C-H bonds in the compounds suggested that neither of the two series of compounds has a different tendency for a proton-coupled electron transfer (PCET) oxidation process. It is proposed that irreversible behavior is due to possible dimerization of the compounds by Shono-type oxidation.

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