Standard

Toughening of alumina ceramics by nanograin refinement. / Шейнерман, Александр Григорьевич; Mukhtar, Masood; Shen, Bing; Yang, Hongbing; Wang, Yupeng; Gleiter, Herbert; Dong, Yanhao; Li, Jiangong.

в: Ceramics International, Том 51, № 17, 07.2025, стр. 24348-24353.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

Шейнерман, АГ, Mukhtar, M, Shen, B, Yang, H, Wang, Y, Gleiter, H, Dong, Y & Li, J 2025, 'Toughening of alumina ceramics by nanograin refinement', Ceramics International, Том. 51, № 17, стр. 24348-24353. https://doi.org/10.1016/j.ceramint.2025.03.113

APA

Шейнерман, А. Г., Mukhtar, M., Shen, B., Yang, H., Wang, Y., Gleiter, H., Dong, Y., & Li, J. (2025). Toughening of alumina ceramics by nanograin refinement. Ceramics International, 51(17), 24348-24353. https://doi.org/10.1016/j.ceramint.2025.03.113

Vancouver

Шейнерман АГ, Mukhtar M, Shen B, Yang H, Wang Y, Gleiter H и пр. Toughening of alumina ceramics by nanograin refinement. Ceramics International. 2025 Июль;51(17):24348-24353. https://doi.org/10.1016/j.ceramint.2025.03.113

Author

Шейнерман, Александр Григорьевич ; Mukhtar, Masood ; Shen, Bing ; Yang, Hongbing ; Wang, Yupeng ; Gleiter, Herbert ; Dong, Yanhao ; Li, Jiangong. / Toughening of alumina ceramics by nanograin refinement. в: Ceramics International. 2025 ; Том 51, № 17. стр. 24348-24353.

BibTeX

@article{7872d2cdfab644e3a64f245005ada5ce,
title = "Toughening of alumina ceramics by nanograin refinement",
abstract = "Alumina (Al2O3), one of the most important ceramics, lacks toughening mechanisms and is sensitive to flaws. Toughening of pure Al2O3 ceramics thus requires emerging mechanisms at the nanoscale, such as grain boundary sliding at finer nanograin sizes. Dense pure and Si-doped Al2O3 nanocrystalline ceramics with grain sizes ranging from 30 to 297 nm were successfully prepared using two-step pressureless sintering. The grain size dependence of fracture toughness in dense pure and Si-doped Al2O3 nanocrystalline ceramics was evaluated by indentation technique. The fracture toughness of pure and Si-doped Al2O3 nanocrystalline ceramics significantly increases with grain size reduction up to 4.45 ± 0.13 and 4.8 ± 0.30 MPa m1/2 at grain sizes of 33 and 30 nm, respectively. This is nearly ∼1.5 times that of the coarse-grained Al2O3 ceramics. The strong grain size dependence of fracture toughness was analyzed by the action of combined grain boundary sliding and migration; and the results simulated from the combined grain boundary sliding and migration model qualitatively match the experimental data. This finding may shed new light on solving the problem of the brittleness of Al2O3 ceramics.",
keywords = "Alumina, Fracture toughness, Grain size, Nanocrystalline ceramics",
author = "Шейнерман, {Александр Григорьевич} and Masood Mukhtar and Bing Shen and Hongbing Yang and Yupeng Wang and Herbert Gleiter and Yanhao Dong and Jiangong Li",
year = "2025",
month = jul,
doi = "10.1016/j.ceramint.2025.03.113",
language = "English",
volume = "51",
pages = "24348--24353",
journal = "Ceramics International",
issn = "0272-8842",
publisher = "Elsevier",
number = "17",

}

RIS

TY - JOUR

T1 - Toughening of alumina ceramics by nanograin refinement

AU - Шейнерман, Александр Григорьевич

AU - Mukhtar, Masood

AU - Shen, Bing

AU - Yang, Hongbing

AU - Wang, Yupeng

AU - Gleiter, Herbert

AU - Dong, Yanhao

AU - Li, Jiangong

PY - 2025/7

Y1 - 2025/7

N2 - Alumina (Al2O3), one of the most important ceramics, lacks toughening mechanisms and is sensitive to flaws. Toughening of pure Al2O3 ceramics thus requires emerging mechanisms at the nanoscale, such as grain boundary sliding at finer nanograin sizes. Dense pure and Si-doped Al2O3 nanocrystalline ceramics with grain sizes ranging from 30 to 297 nm were successfully prepared using two-step pressureless sintering. The grain size dependence of fracture toughness in dense pure and Si-doped Al2O3 nanocrystalline ceramics was evaluated by indentation technique. The fracture toughness of pure and Si-doped Al2O3 nanocrystalline ceramics significantly increases with grain size reduction up to 4.45 ± 0.13 and 4.8 ± 0.30 MPa m1/2 at grain sizes of 33 and 30 nm, respectively. This is nearly ∼1.5 times that of the coarse-grained Al2O3 ceramics. The strong grain size dependence of fracture toughness was analyzed by the action of combined grain boundary sliding and migration; and the results simulated from the combined grain boundary sliding and migration model qualitatively match the experimental data. This finding may shed new light on solving the problem of the brittleness of Al2O3 ceramics.

AB - Alumina (Al2O3), one of the most important ceramics, lacks toughening mechanisms and is sensitive to flaws. Toughening of pure Al2O3 ceramics thus requires emerging mechanisms at the nanoscale, such as grain boundary sliding at finer nanograin sizes. Dense pure and Si-doped Al2O3 nanocrystalline ceramics with grain sizes ranging from 30 to 297 nm were successfully prepared using two-step pressureless sintering. The grain size dependence of fracture toughness in dense pure and Si-doped Al2O3 nanocrystalline ceramics was evaluated by indentation technique. The fracture toughness of pure and Si-doped Al2O3 nanocrystalline ceramics significantly increases with grain size reduction up to 4.45 ± 0.13 and 4.8 ± 0.30 MPa m1/2 at grain sizes of 33 and 30 nm, respectively. This is nearly ∼1.5 times that of the coarse-grained Al2O3 ceramics. The strong grain size dependence of fracture toughness was analyzed by the action of combined grain boundary sliding and migration; and the results simulated from the combined grain boundary sliding and migration model qualitatively match the experimental data. This finding may shed new light on solving the problem of the brittleness of Al2O3 ceramics.

KW - Alumina

KW - Fracture toughness

KW - Grain size

KW - Nanocrystalline ceramics

UR - https://www.mendeley.com/catalogue/8672bfd1-7be3-3d5f-a261-8bf77c11a579/

U2 - 10.1016/j.ceramint.2025.03.113

DO - 10.1016/j.ceramint.2025.03.113

M3 - Article

VL - 51

SP - 24348

EP - 24353

JO - Ceramics International

JF - Ceramics International

SN - 0272-8842

IS - 17

ER -

ID: 135905091