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Ultrathin selenium nanorods from helical phases: a quantum chemical study using line group theory. / Порсев, Виталий Вениаминович; Бандура, Андрей Вилович; Куруч, Дмитрий Дмитриевич; Эварестов, Роберт Александрович.

в: Acta Crystallographica Section A: Foundations and Advances, Том 81, 21.10.2025, стр. 460-472.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

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@article{c4fbf09973d144aba5514f54024747df,
title = "Ultrathin selenium nanorods from helical phases: a quantum chemical study using line group theory",
abstract = "Quantum chemical calculations of ultrathin nanorods cut from two bulk selenium phases were performed. Two sets of nanorods with trigonal and hexagonal geometric shapes described by the rod symmetry groups p31 and p3121, respectively, were constructed from the most stable Se-I (P3121) phase. The ultrathin nanorods generated by the Se-I phase were found to be unstable with respect to spontaneous torsion deformations, which slightly shift the helical axis order away from its crystallographic integer value of 3. In order to describe their correct atomic structure, one should use the line symmetry groups and determine the exact order of the helical axis for each nanorod. As the nanorod thickness increases, the true order quickly approaches the crystallographic value, but is never equal to it. Nanorods with a square geometric shape were constructed from the Se-II' (I41/acd) phase. Depending on their thickness, these nanorods are classified as either chiral or achiral, exhibiting p4122 or p4c2 symmetries, respectively. It was shown that square nanorods represent a unique class of nanostructures that alternately exhibit chiral and achiral properties as their thickness increases. Chiral square nanorods are unstable with respect to spontaneous torsion deformations, which shift the helical axis order from the crystallographic integer value of 4 (similar to nanorods cut from the Se-I phase). At the same time, achiral square nanorods are stable with respect to spontaneous torsion deformations.",
keywords = "DFT calculations, intrinsic helical twist, line symmetry groups, rod symmetry groups, selenium nanorods",
author = "Порсев, {Виталий Вениаминович} and Бандура, {Андрей Вилович} and Куруч, {Дмитрий Дмитриевич} and Эварестов, {Роберт Александрович}",
year = "2025",
month = oct,
day = "21",
doi = "10.1107/s2053273325009088",
language = "English",
volume = "81",
pages = "460--472",
journal = "Acta Crystallographica Section A: Foundations and Advances",
issn = "0108-7673",
publisher = "International Union of Crystallography",

}

RIS

TY - JOUR

T1 - Ultrathin selenium nanorods from helical phases: a quantum chemical study using line group theory

AU - Порсев, Виталий Вениаминович

AU - Бандура, Андрей Вилович

AU - Куруч, Дмитрий Дмитриевич

AU - Эварестов, Роберт Александрович

PY - 2025/10/21

Y1 - 2025/10/21

N2 - Quantum chemical calculations of ultrathin nanorods cut from two bulk selenium phases were performed. Two sets of nanorods with trigonal and hexagonal geometric shapes described by the rod symmetry groups p31 and p3121, respectively, were constructed from the most stable Se-I (P3121) phase. The ultrathin nanorods generated by the Se-I phase were found to be unstable with respect to spontaneous torsion deformations, which slightly shift the helical axis order away from its crystallographic integer value of 3. In order to describe their correct atomic structure, one should use the line symmetry groups and determine the exact order of the helical axis for each nanorod. As the nanorod thickness increases, the true order quickly approaches the crystallographic value, but is never equal to it. Nanorods with a square geometric shape were constructed from the Se-II' (I41/acd) phase. Depending on their thickness, these nanorods are classified as either chiral or achiral, exhibiting p4122 or p4c2 symmetries, respectively. It was shown that square nanorods represent a unique class of nanostructures that alternately exhibit chiral and achiral properties as their thickness increases. Chiral square nanorods are unstable with respect to spontaneous torsion deformations, which shift the helical axis order from the crystallographic integer value of 4 (similar to nanorods cut from the Se-I phase). At the same time, achiral square nanorods are stable with respect to spontaneous torsion deformations.

AB - Quantum chemical calculations of ultrathin nanorods cut from two bulk selenium phases were performed. Two sets of nanorods with trigonal and hexagonal geometric shapes described by the rod symmetry groups p31 and p3121, respectively, were constructed from the most stable Se-I (P3121) phase. The ultrathin nanorods generated by the Se-I phase were found to be unstable with respect to spontaneous torsion deformations, which slightly shift the helical axis order away from its crystallographic integer value of 3. In order to describe their correct atomic structure, one should use the line symmetry groups and determine the exact order of the helical axis for each nanorod. As the nanorod thickness increases, the true order quickly approaches the crystallographic value, but is never equal to it. Nanorods with a square geometric shape were constructed from the Se-II' (I41/acd) phase. Depending on their thickness, these nanorods are classified as either chiral or achiral, exhibiting p4122 or p4c2 symmetries, respectively. It was shown that square nanorods represent a unique class of nanostructures that alternately exhibit chiral and achiral properties as their thickness increases. Chiral square nanorods are unstable with respect to spontaneous torsion deformations, which shift the helical axis order from the crystallographic integer value of 4 (similar to nanorods cut from the Se-I phase). At the same time, achiral square nanorods are stable with respect to spontaneous torsion deformations.

KW - DFT calculations

KW - intrinsic helical twist

KW - line symmetry groups

KW - rod symmetry groups

KW - selenium nanorods

UR - https://www.mendeley.com/catalogue/972c792e-c6e6-3762-b40f-164190b937a1/

U2 - 10.1107/s2053273325009088

DO - 10.1107/s2053273325009088

M3 - Article

VL - 81

SP - 460

EP - 472

JO - Acta Crystallographica Section A: Foundations and Advances

JF - Acta Crystallographica Section A: Foundations and Advances

SN - 0108-7673

ER -

ID: 143109652