Standard

Twin domain and antiphase boundaries in microcrystals of Κ-phase Ga2O3. / Вывенко, Олег Федорович; Шапенков, Севастьян Владимирович; Убыйвовк, Евгений Викторович; Бондаренко, Антон Сергеевич; Печников, Алексей; Николаев, Владимир Иванович; Степанов, Сергей.

In: Materialia, Vol. 32, 101942, 01.12.2023.

Research output: Contribution to journalArticlepeer-review

Harvard

Вывенко, ОФ, Шапенков, СВ, Убыйвовк, ЕВ, Бондаренко, АС, Печников, А, Николаев, ВИ & Степанов, С 2023, 'Twin domain and antiphase boundaries in microcrystals of Κ-phase Ga2O3', Materialia, vol. 32, 101942. https://doi.org/10.1016/j.mtla.2023.101942

APA

Вывенко, О. Ф., Шапенков, С. В., Убыйвовк, Е. В., Бондаренко, А. С., Печников, А., Николаев, В. И., & Степанов, С. (2023). Twin domain and antiphase boundaries in microcrystals of Κ-phase Ga2O3. Materialia, 32, [101942]. https://doi.org/10.1016/j.mtla.2023.101942

Vancouver

Author

Вывенко, Олег Федорович ; Шапенков, Севастьян Владимирович ; Убыйвовк, Евгений Викторович ; Бондаренко, Антон Сергеевич ; Печников, Алексей ; Николаев, Владимир Иванович ; Степанов, Сергей. / Twin domain and antiphase boundaries in microcrystals of Κ-phase Ga2O3. In: Materialia. 2023 ; Vol. 32.

BibTeX

@article{d92b05fba5124ab6a7b4c0811103345c,
title = "Twin domain and antiphase boundaries in microcrystals of Κ-phase Ga2O3",
abstract = "The structural properties of twin domain boundaries (TDB) and antiphase boundaries (APB) in individual thin, hexagonal prismatic microcrystals of κ-Ga2O3 grown on GaN/sapphire template with HVPE were investigated with electron backscatter diffraction (EBSD) and transmission electron microscopy (TEM). The microcrystals were composed from the domains with three in-plane 120° rotational orientations. It was found that every individual twin domain contains a parallel array of APBs of a high density stretched in the [010] direction. APBs possess steps or interruption and can form double oppositely shifted spatially separated layers (APB dipoles). TDBs on majority of their length are incoherent being not strictly flat and serve as the border for the APBs interruptions. Panchromatic cathodoluminescence mapping of the microcrystals revealed that not all TDBs and APBs reduced its intensity. The interruptions and steps of APBs were proposed to be the main origin of the excess charged carrier recombination. A model of the atomic structure in the vicinity of the defects is proposed and the assumption about the formation of local high strain regions and dangling bonds was made.",
keywords = "оксид галлия, домены, антифазные границы, ПЭМ, СЭМ, катодолюминесценция, Antiphase boundary, EBSD, TEM, Twin boundary, κ-Ga2O3",
author = "Вывенко, {Олег Федорович} and Шапенков, {Севастьян Владимирович} and Убыйвовк, {Евгений Викторович} and Бондаренко, {Антон Сергеевич} and Алексей Печников and Николаев, {Владимир Иванович} and Сергей Степанов",
year = "2023",
month = dec,
day = "1",
doi = "10.1016/j.mtla.2023.101942",
language = "English",
volume = "32",
journal = "Materialia",
issn = "2589-1529",
publisher = "Elsevier",

}

RIS

TY - JOUR

T1 - Twin domain and antiphase boundaries in microcrystals of Κ-phase Ga2O3

AU - Вывенко, Олег Федорович

AU - Шапенков, Севастьян Владимирович

AU - Убыйвовк, Евгений Викторович

AU - Бондаренко, Антон Сергеевич

AU - Печников, Алексей

AU - Николаев, Владимир Иванович

AU - Степанов, Сергей

PY - 2023/12/1

Y1 - 2023/12/1

N2 - The structural properties of twin domain boundaries (TDB) and antiphase boundaries (APB) in individual thin, hexagonal prismatic microcrystals of κ-Ga2O3 grown on GaN/sapphire template with HVPE were investigated with electron backscatter diffraction (EBSD) and transmission electron microscopy (TEM). The microcrystals were composed from the domains with three in-plane 120° rotational orientations. It was found that every individual twin domain contains a parallel array of APBs of a high density stretched in the [010] direction. APBs possess steps or interruption and can form double oppositely shifted spatially separated layers (APB dipoles). TDBs on majority of their length are incoherent being not strictly flat and serve as the border for the APBs interruptions. Panchromatic cathodoluminescence mapping of the microcrystals revealed that not all TDBs and APBs reduced its intensity. The interruptions and steps of APBs were proposed to be the main origin of the excess charged carrier recombination. A model of the atomic structure in the vicinity of the defects is proposed and the assumption about the formation of local high strain regions and dangling bonds was made.

AB - The structural properties of twin domain boundaries (TDB) and antiphase boundaries (APB) in individual thin, hexagonal prismatic microcrystals of κ-Ga2O3 grown on GaN/sapphire template with HVPE were investigated with electron backscatter diffraction (EBSD) and transmission electron microscopy (TEM). The microcrystals were composed from the domains with three in-plane 120° rotational orientations. It was found that every individual twin domain contains a parallel array of APBs of a high density stretched in the [010] direction. APBs possess steps or interruption and can form double oppositely shifted spatially separated layers (APB dipoles). TDBs on majority of their length are incoherent being not strictly flat and serve as the border for the APBs interruptions. Panchromatic cathodoluminescence mapping of the microcrystals revealed that not all TDBs and APBs reduced its intensity. The interruptions and steps of APBs were proposed to be the main origin of the excess charged carrier recombination. A model of the atomic structure in the vicinity of the defects is proposed and the assumption about the formation of local high strain regions and dangling bonds was made.

KW - оксид галлия

KW - домены

KW - антифазные границы

KW - ПЭМ

KW - СЭМ

KW - катодолюминесценция

KW - Antiphase boundary

KW - EBSD

KW - TEM

KW - Twin boundary

KW - κ-Ga2O3

UR - https://www.mendeley.com/catalogue/ad774d37-30b0-3026-9049-85cf46490071/

U2 - 10.1016/j.mtla.2023.101942

DO - 10.1016/j.mtla.2023.101942

M3 - Article

VL - 32

JO - Materialia

JF - Materialia

SN - 2589-1529

M1 - 101942

ER -

ID: 114070434