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High-Pressure Elastic Properties of Polycyclic Aromatic Hydrocarbons Obtained by First-Principles Calculations. / Litasov, K. D.; Inerbaev, T. M.; Abuova, F. U. и др.

в: Geochemistry International, Том 57, № 5, 01.05.2019, стр. 499-508.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

Litasov, KD, Inerbaev, TM, Abuova, FU, Chanyshev, AD, Dauletbekova, AK & Akilbekov, AT 2019, 'High-Pressure Elastic Properties of Polycyclic Aromatic Hydrocarbons Obtained by First-Principles Calculations', Geochemistry International, Том. 57, № 5, стр. 499-508. https://doi.org/10.1134/S0016702919050069

APA

Litasov, K. D., Inerbaev, T. M., Abuova, F. U., Chanyshev, A. D., Dauletbekova, A. K., & Akilbekov, A. T. (2019). High-Pressure Elastic Properties of Polycyclic Aromatic Hydrocarbons Obtained by First-Principles Calculations. Geochemistry International, 57(5), 499-508. https://doi.org/10.1134/S0016702919050069

Vancouver

Litasov KD, Inerbaev TM, Abuova FU, Chanyshev AD, Dauletbekova AK, Akilbekov AT. High-Pressure Elastic Properties of Polycyclic Aromatic Hydrocarbons Obtained by First-Principles Calculations. Geochemistry International. 2019 май 1;57(5):499-508. doi: 10.1134/S0016702919050069

Author

Litasov, K. D. ; Inerbaev, T. M. ; Abuova, F. U. и др. / High-Pressure Elastic Properties of Polycyclic Aromatic Hydrocarbons Obtained by First-Principles Calculations. в: Geochemistry International. 2019 ; Том 57, № 5. стр. 499-508.

BibTeX

@article{d1ae818b66f84c2190a4673c762e2873,
title = "High-Pressure Elastic Properties of Polycyclic Aromatic Hydrocarbons Obtained by First-Principles Calculations",
abstract = "Abstract—: The crystal structures and compressibility parameters of benzene and a number of polycyclic aromatic hydrocarbons (PAHs) were calculated by the methods of the first-principles density functional theory with the gradient approximation of exchange and correlation potentials in the PBE form accounting for van der Waals interactions (optPBE–vdWB) at pressures of 0–20 GPa. A comparison with experimental data for benzene, naphthalene, tetracene, and pentacene demonstrated the high accuracy of our calculations. All the compounds have similar compressibilities, bulk moduli (8–12 GPa), and their pressure derivatives (6.9–7.5). The similarity of the calculated parameters indicates the main role of a decrease in interatomic distances during PAH compression and weak deformation of the molecules and benzene rings. The compressibility is weakly dependent on the number of atoms (benzene rings) in the molecule or crystal structure type (most of the PAHs have the space group P21/a). Compounds with many benzene rings and with a denser structure of rings (cyclic pyrene and coronene) are less compressible than less dense PAHs (tetracene and hexacene). Some PAHs (benzene, phenanthrene, pyrene, coronene) have high-pressure modifications, but a correct description of their structures allowing calculation of their elastic moduli has not been made so far. The obtained data on PAH compressibility can be used to develop high-temperature equations of state and calculation of the equilibrium composition of liquid and solid components of the C–O–H system.",
keywords = "compressibility, equation of state, first principles calculation, high pressure, polycyclic aromatic hydrocarbons, BENZENE, TEMPERATURE-DEPENDENCE, MOLECULAR-STRUCTURE, CRYSTAL-STRUCTURE, PHASE-TRANSITIONS, NEUTRON-DIFFRACTION, X-RAY-DIFFRACTION, PHENANTHRENE, GPA, THERMAL MOTION",
author = "Litasov, {K. D.} and Inerbaev, {T. M.} and Abuova, {F. U.} and Chanyshev, {A. D.} and Dauletbekova, {A. K.} and Akilbekov, {A. T.}",
year = "2019",
month = may,
day = "1",
doi = "10.1134/S0016702919050069",
language = "English",
volume = "57",
pages = "499--508",
journal = "Geochemistry International",
issn = "0016-7029",
publisher = "PLEIADES PUBLISHING INC",
number = "5",

}

RIS

TY - JOUR

T1 - High-Pressure Elastic Properties of Polycyclic Aromatic Hydrocarbons Obtained by First-Principles Calculations

AU - Litasov, K. D.

AU - Inerbaev, T. M.

AU - Abuova, F. U.

AU - Chanyshev, A. D.

AU - Dauletbekova, A. K.

AU - Akilbekov, A. T.

PY - 2019/5/1

Y1 - 2019/5/1

N2 - Abstract—: The crystal structures and compressibility parameters of benzene and a number of polycyclic aromatic hydrocarbons (PAHs) were calculated by the methods of the first-principles density functional theory with the gradient approximation of exchange and correlation potentials in the PBE form accounting for van der Waals interactions (optPBE–vdWB) at pressures of 0–20 GPa. A comparison with experimental data for benzene, naphthalene, tetracene, and pentacene demonstrated the high accuracy of our calculations. All the compounds have similar compressibilities, bulk moduli (8–12 GPa), and their pressure derivatives (6.9–7.5). The similarity of the calculated parameters indicates the main role of a decrease in interatomic distances during PAH compression and weak deformation of the molecules and benzene rings. The compressibility is weakly dependent on the number of atoms (benzene rings) in the molecule or crystal structure type (most of the PAHs have the space group P21/a). Compounds with many benzene rings and with a denser structure of rings (cyclic pyrene and coronene) are less compressible than less dense PAHs (tetracene and hexacene). Some PAHs (benzene, phenanthrene, pyrene, coronene) have high-pressure modifications, but a correct description of their structures allowing calculation of their elastic moduli has not been made so far. The obtained data on PAH compressibility can be used to develop high-temperature equations of state and calculation of the equilibrium composition of liquid and solid components of the C–O–H system.

AB - Abstract—: The crystal structures and compressibility parameters of benzene and a number of polycyclic aromatic hydrocarbons (PAHs) were calculated by the methods of the first-principles density functional theory with the gradient approximation of exchange and correlation potentials in the PBE form accounting for van der Waals interactions (optPBE–vdWB) at pressures of 0–20 GPa. A comparison with experimental data for benzene, naphthalene, tetracene, and pentacene demonstrated the high accuracy of our calculations. All the compounds have similar compressibilities, bulk moduli (8–12 GPa), and their pressure derivatives (6.9–7.5). The similarity of the calculated parameters indicates the main role of a decrease in interatomic distances during PAH compression and weak deformation of the molecules and benzene rings. The compressibility is weakly dependent on the number of atoms (benzene rings) in the molecule or crystal structure type (most of the PAHs have the space group P21/a). Compounds with many benzene rings and with a denser structure of rings (cyclic pyrene and coronene) are less compressible than less dense PAHs (tetracene and hexacene). Some PAHs (benzene, phenanthrene, pyrene, coronene) have high-pressure modifications, but a correct description of their structures allowing calculation of their elastic moduli has not been made so far. The obtained data on PAH compressibility can be used to develop high-temperature equations of state and calculation of the equilibrium composition of liquid and solid components of the C–O–H system.

KW - compressibility

KW - equation of state

KW - first principles calculation

KW - high pressure

KW - polycyclic aromatic hydrocarbons

KW - BENZENE

KW - TEMPERATURE-DEPENDENCE

KW - MOLECULAR-STRUCTURE

KW - CRYSTAL-STRUCTURE

KW - PHASE-TRANSITIONS

KW - NEUTRON-DIFFRACTION

KW - X-RAY-DIFFRACTION

KW - PHENANTHRENE

KW - GPA

KW - THERMAL MOTION

UR - http://www.scopus.com/inward/record.url?scp=85066804678&partnerID=8YFLogxK

U2 - 10.1134/S0016702919050069

DO - 10.1134/S0016702919050069

M3 - Article

AN - SCOPUS:85066804678

VL - 57

SP - 499

EP - 508

JO - Geochemistry International

JF - Geochemistry International

SN - 0016-7029

IS - 5

ER -

ID: 20532804