Home / Publications / Electrochemical behavior of bridged 1,2,4-dioxazolidine derivative in acetonitrile medium on the smooth gold

Electrochemical behavior of bridged 1,2,4-dioxazolidine derivative in acetonitrile medium on the smooth gold

0
Share
Cite this
GOST
 | 
Cite this
GOST Copy
Polyakov M. V. et al. Electrochemical behavior of bridged 1,2,4-dioxazolidine derivative in acetonitrile medium on the smooth gold // Mendeleev Communications. 2025. Vol. 35. No. 4. pp. 417-419.
GOST all authors (up to 50) Copy
Polyakov M. V., Vedenyapina M. D., Skundin A. M., Yaremenko I. A., Radulov P. S., Belyakova Y. Y. Electrochemical behavior of bridged 1,2,4-dioxazolidine derivative in acetonitrile medium on the smooth gold // Mendeleev Communications. 2025. Vol. 35. No. 4. pp. 417-419.
RIS
 | 
Cite this
RIS Copy
TY - JOUR
DO - 10.71267/mencom.7714
UR - https://mendcomm.colab.ws/publications/10.71267/mencom.7714
TI - Electrochemical behavior of bridged 1,2,4-dioxazolidine derivative in acetonitrile medium on the smooth gold
T2 - Mendeleev Communications
AU - Polyakov, Mikhail V.
AU - Vedenyapina, Marina Dmitrievna
AU - Skundin, Alexandr Mordukhaevich
AU - Yaremenko, Ivan Andreevich
AU - Radulov, Peter Sergeyevich
AU - Belyakova, Yulia Yuryevna
PY - 2025
DA - 2025/05/21
PB - Mendeleev Communications
SP - 417-419
IS - 4
VL - 35
ER -
BibTex
 | 
Cite this
BibTex (up to 50 authors) Copy
@article{2025_Polyakov,
author = {Mikhail V. Polyakov and Marina Dmitrievna Vedenyapina and Alexandr Mordukhaevich Skundin and Ivan Andreevich Yaremenko and Peter Sergeyevich Radulov and Yulia Yuryevna Belyakova},
title = {Electrochemical behavior of bridged 1,2,4-dioxazolidine derivative in acetonitrile medium on the smooth gold},
journal = {Mendeleev Communications},
year = {2025},
volume = {35},
publisher = {Mendeleev Communications},
month = {May},
url = {https://mendcomm.colab.ws/publications/10.71267/mencom.7714},
number = {4},
pages = {417--419},
doi = {10.71267/mencom.7714}
}
MLA
Cite this
MLA Copy
Polyakov, Mikhail V., et al. “Electrochemical behavior of bridged 1,2,4-dioxazolidine derivative in acetonitrile medium on the smooth gold.” Mendeleev Communications, vol. 35, no. 4, May. 2025, pp. 417-419. https://mendcomm.colab.ws/publications/10.71267/mencom.7714.

Keywords

1
2
4-dioxazolidines
6
7-dioxa-8-azabicyclo-[3.2.1]octane.
anodic oxidation
cathodic reduction
cyclic voltammetry
gold
peroxides

Abstract

Bridged bicyclic peroxide with 1,2,4-dioxazolidine core, namely, ethyl 2-(4-chlorobenzyl)-1,5-dimethyl-6,7-dioxa-8- azabicyclo[3.2.1]octane-2-carboxylate, was studied by cyclic voltammetry in acetonitrile medium on a smooth gold electrode. During the cathode process, two electrons are transferred, with the first electron transfer being reversible; a mechanism of cathode reduction of the substrate involves acetonitrile as the source of protons. The anodic oxidation involves the formation of colloidal gold particles due to corrosion of the gold electrode.

Funders

Ministry of Education and Science of the Russian Federation
FFZZ-2022-03

References

.
Synthesis and in vitro Study of Artemisinin/Synthetic Peroxide‐Based Hybrid Compounds against SARS‐CoV‐2 and Cancer
Herrmann L., Yaremenko I.A., Çapcı A., Struwe J., Tailor D., Dheeraj A., Hodek J., Belyakova Y.Y., Radulov P.S., Weber J., Malhotra S.V., Terent'ev A.O., Ackermann L., Tsogoeva S.B.
ChemMedChem, 2022
.
Repurposing drugs for the treatment and control of helminth infections
Panic G., Duthaler U., Speich B., Keiser J.
International Journal for Parasitology: Drugs and Drug Resistance, 2014
.
In vitro antitrypanosomal activity of plant terpenes against Trypanosoma brucei
Otoguro K., Iwatsuki M., Ishiyama A., Namatame M., Nishihara-Tukashima A., Kiyohara H., Hashimoto T., Asakawa Y., Ōmura S., Yamada H.
Phytochemistry, 2011
.
Electrochemical Reduction of Spirocyclopentylmalonyl Peroxide in an Aqueous Medium
Vedenyapina M.D., Skundin A.M., Vil’ V.A., Kazakova M.M., Barsegyan Y.A.
Russian Journal of Physical Chemistry A, 2020
.
Electrochemical Behavior of Gold in Aqueous Solutions of Spirocyclopentyl Malonyl Peroxide
Vedenyapina M.D., Skundin A.M., Vil’ V.A., Kazakova M.M., Barsegyan Y.A.
Russian Journal of Physical Chemistry A, 2021
.
Catalyst development for the synthesis of ozonides and tetraoxanes under heterogeneous conditions. Disclosure of an unprecedented class of fungicides for agricultural application.
Yaremenko I.A., Radulov P.S., Belyakova Y.Y., Demina A.A., Fomenkov D.I., Barsukov D.V., Subbotina I.R., Fleury F., Terent'ev A.O.
Chemistry - A European Journal, 2020
.
Cyclic Synthetic Peroxides Inhibit Growth of Entomopathogenic Fungus Ascosphaera apis without Toxic Effect on Bumblebees
Yaremenko I.A., Syromyatnikov M.Y., Radulov P.S., Belyakova Y.Y., Fomenkov D.I., Popov V.N., Terent’ev A.O.
Molecules, 2020
.
The Electrogenerated Cyanomethyl Anion: An Old Base Still Smart
Chiarotto I., Mattiello L., Feroci M.
Accounts of Chemical Research, 2019
.
Marriage of Peroxides and Nitrogen Heterocycles: Selective Three-Component Assembly, Peroxide-Preserving Rearrangement, and Stereoelectronic Source of Unusual Stability of Bridged Azaozonides
Yaremenko I.A., Belyakova Y.Y., Radulov P.S., Novikov R.A., Medvedev M.G., Krivoshchapov N.V., Korlyukov A.A., Alabugin I.V., Terent’ev A.O.
Journal of the American Chemical Society, 2021
.
Artemisinin inspired synthetic endoperoxide drug candidates: Design, synthesis, and mechanism of action studies
Woodley C.M., Amado P.S., Cristiano M.L., O'Neill P.M.
Medicinal Research Reviews, 2021
.
Antimalarial and Anticancer Activity Evaluation of Bridged Ozonides, Aminoperoxides, and Tetraoxanes
Coghi P., Yaremenko I.A., Prommana P., Wu J.N., Zhang R.L., Ng J.P., Belyakova Y.Y., Law B.Y., Radulov P.S., Uthaipibull C., Wong V.K., Terent'ev A.O.
ChemMedChem, 2022
.
Medicinal chemistry updates on quinoline- and endoperoxide-based hybrids with potent antimalarial activity
Uddin A., Chawla M., Irfan I., Mahajan S., Singh S., Abid M.
RSC Medicinal Chemistry, 2021
.
Kinetics of the photoinduced dissociative electron transfer reduction of the antimalarial endoperoxide, Artemisinin
Magri D.C., Donkers R.L., Workentin M.S.
Journal of Photochemistry and Photobiology A: Chemistry, 2001
.
Electrochemical Reduction of G3-Factor Endoperoxide and Its Methyl Ether: Evidence for a Competition between Concerted and Stepwise Dissociative Electron Transfer
Najjar F., André-Barrès C., Baltas M., Lacaze-Dufaure C., Magri D., Workentin M., Tzédakis T.
Chemistry - A European Journal, 2007
.
Voltammetry of multi-electron electrode processes of organic species
Batchelor-McAuley C., Compton R.G.
Journal of Electroanalytical Chemistry, 2012
.
Peroxy Acids: Role in Organic Synthesis
Kaur N., Kishore D.
Synthetic Communications, 2014
.
On the cathodic behaviour of tetraalkylammonium cations at a platinum electrode
Simonet J., Astier Y., Dano C.
Journal of Electroanalytical Chemistry, 1998
.
Neghmouche N.S., Lanez T.
International Letters of Chemistry Physics and Astronomy, 2013
.
Electrochemical Behavior of a Gold Electrode in the Aqueous Potassium Salt of Bridging 1,2,4,5-Tetraoxane
Polyakov M.V., Vedenyapina M.D., Skundin A.M., Yaremenko I.A., Radulov P.S., Kuznetsov V.V.
Russian Journal of Physical Chemistry A, 2023
.
Electrochemical behavior of a flat gold electrode in an acetonitrile solution of 1,2,4,5-tetraoxane
Polyakov M.V., Vedenyapina M.D., Skundin A.M., Yaremenko I.A., Radulov P.S.
Russian Chemical Bulletin, 2024
.
Studying the Electrochemical Behavior of a Smooth Gold Electrode in a Solution of Bridged 1,2,4-Trioxalane in Acetonitrile
Polyakov M.V., Vedenyapina M.D., Skundin A.M., Yaremenko I.A., Radulov P.S.
Russian Journal of Physical Chemistry A, 2024