Standard

Elementary processes triggered in curcumin molecule by gas-phase resonance electron attachment and by photoexcitation in solution. / Пшеничнюк, С.А.; Асфандиаров, Н.Л.; Маркова, А.В.; Комолов, Алексей Сергеевич; Timoshnikov, V.A.; Polyakov, N.E.

в: The Journal of Chemical Physics, Том 159, № 21, 214305, 05.12.2023.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

Пшеничнюк, СА, Асфандиаров, НЛ, Маркова, АВ, Комолов, АС, Timoshnikov, VA & Polyakov, NE 2023, 'Elementary processes triggered in curcumin molecule by gas-phase resonance electron attachment and by photoexcitation in solution', The Journal of Chemical Physics, Том. 159, № 21, 214305. https://doi.org/10.1063/5.0180053

APA

Пшеничнюк, С. А., Асфандиаров, Н. Л., Маркова, А. В., Комолов, А. С., Timoshnikov, V. A., & Polyakov, N. E. (2023). Elementary processes triggered in curcumin molecule by gas-phase resonance electron attachment and by photoexcitation in solution. The Journal of Chemical Physics, 159(21), [214305]. https://doi.org/10.1063/5.0180053

Vancouver

Пшеничнюк СА, Асфандиаров НЛ, Маркова АВ, Комолов АС, Timoshnikov VA, Polyakov NE. Elementary processes triggered in curcumin molecule by gas-phase resonance electron attachment and by photoexcitation in solution. The Journal of Chemical Physics. 2023 Дек. 5;159(21). 214305. https://doi.org/10.1063/5.0180053

Author

Пшеничнюк, С.А. ; Асфандиаров, Н.Л. ; Маркова, А.В. ; Комолов, Алексей Сергеевич ; Timoshnikov, V.A. ; Polyakov, N.E. / Elementary processes triggered in curcumin molecule by gas-phase resonance electron attachment and by photoexcitation in solution. в: The Journal of Chemical Physics. 2023 ; Том 159, № 21.

BibTeX

@article{4107cf47f2844d4cb290d899ad3f37b3,
title = "Elementary processes triggered in curcumin molecule by gas-phase resonance electron attachment and by photoexcitation in solution",
abstract = "Electron-driven processes in isolated curcumin (CUR) molecules are studied by means of dissociative electron attachment (DEA) spectroscopy under gas-phase conditions. Elementary photostimulated reactions initiated in CUR molecules under UV irradiation are studied using the chemically induced dynamic nuclear polarization method in an acetonitrile solvent. Density functional theory is applied to elucidate the energetics of fragmentation of CUR by low-energy (0-15 eV) resonance electron attachment and to characterize various CUR radical forms. The adiabatic electron affinity of CUR molecule is experimentally estimated to be about 1 eV. An extra electron attachment to the π1* LUMO and π2* molecular orbitals is responsible for the most intense DEA signals observed at thermal electron energy. The most abundant long-lived (hundreds of micro- to milliseconds) molecular negative ions CUR- are detected not only at the thermal energy of incident electrons but also at 0.6 eV, which is due to the formation of the π3* and π4* temporary negative ion states predicted to lie around 1 eV. Proton-assisted electron transfer between CUR molecules is registered under UV irradiation. The formation of both radical-anions and radical-cations of CUR is found to be more favorable in its enol form. The present findings shed some light on the elementary processes triggered in CUR by electrons and photons and, therefore, can be useful to understand the molecular mechanisms responsible for a variety of biological effects produced by CUR.",
author = "С.А. Пшеничнюк and Н.Л. Асфандиаров and А.В. Маркова and Комолов, {Алексей Сергеевич} and V.A. Timoshnikov and N.E. Polyakov",
year = "2023",
month = dec,
day = "5",
doi = "10.1063/5.0180053",
language = "English",
volume = "159",
journal = "Journal of Chemical Physics",
issn = "0021-9606",
publisher = "American Institute of Physics",
number = "21",

}

RIS

TY - JOUR

T1 - Elementary processes triggered in curcumin molecule by gas-phase resonance electron attachment and by photoexcitation in solution

AU - Пшеничнюк, С.А.

AU - Асфандиаров, Н.Л.

AU - Маркова, А.В.

AU - Комолов, Алексей Сергеевич

AU - Timoshnikov, V.A.

AU - Polyakov, N.E.

PY - 2023/12/5

Y1 - 2023/12/5

N2 - Electron-driven processes in isolated curcumin (CUR) molecules are studied by means of dissociative electron attachment (DEA) spectroscopy under gas-phase conditions. Elementary photostimulated reactions initiated in CUR molecules under UV irradiation are studied using the chemically induced dynamic nuclear polarization method in an acetonitrile solvent. Density functional theory is applied to elucidate the energetics of fragmentation of CUR by low-energy (0-15 eV) resonance electron attachment and to characterize various CUR radical forms. The adiabatic electron affinity of CUR molecule is experimentally estimated to be about 1 eV. An extra electron attachment to the π1* LUMO and π2* molecular orbitals is responsible for the most intense DEA signals observed at thermal electron energy. The most abundant long-lived (hundreds of micro- to milliseconds) molecular negative ions CUR- are detected not only at the thermal energy of incident electrons but also at 0.6 eV, which is due to the formation of the π3* and π4* temporary negative ion states predicted to lie around 1 eV. Proton-assisted electron transfer between CUR molecules is registered under UV irradiation. The formation of both radical-anions and radical-cations of CUR is found to be more favorable in its enol form. The present findings shed some light on the elementary processes triggered in CUR by electrons and photons and, therefore, can be useful to understand the molecular mechanisms responsible for a variety of biological effects produced by CUR.

AB - Electron-driven processes in isolated curcumin (CUR) molecules are studied by means of dissociative electron attachment (DEA) spectroscopy under gas-phase conditions. Elementary photostimulated reactions initiated in CUR molecules under UV irradiation are studied using the chemically induced dynamic nuclear polarization method in an acetonitrile solvent. Density functional theory is applied to elucidate the energetics of fragmentation of CUR by low-energy (0-15 eV) resonance electron attachment and to characterize various CUR radical forms. The adiabatic electron affinity of CUR molecule is experimentally estimated to be about 1 eV. An extra electron attachment to the π1* LUMO and π2* molecular orbitals is responsible for the most intense DEA signals observed at thermal electron energy. The most abundant long-lived (hundreds of micro- to milliseconds) molecular negative ions CUR- are detected not only at the thermal energy of incident electrons but also at 0.6 eV, which is due to the formation of the π3* and π4* temporary negative ion states predicted to lie around 1 eV. Proton-assisted electron transfer between CUR molecules is registered under UV irradiation. The formation of both radical-anions and radical-cations of CUR is found to be more favorable in its enol form. The present findings shed some light on the elementary processes triggered in CUR by electrons and photons and, therefore, can be useful to understand the molecular mechanisms responsible for a variety of biological effects produced by CUR.

UR - https://www.mendeley.com/catalogue/9be70411-d136-3a34-85b8-39773f234bf4/

U2 - 10.1063/5.0180053

DO - 10.1063/5.0180053

M3 - Article

VL - 159

JO - Journal of Chemical Physics

JF - Journal of Chemical Physics

SN - 0021-9606

IS - 21

M1 - 214305

ER -

ID: 114638308