Abstract:
Behavior of threading dislocations in porous heteroepitaxial gallium nitride (GaN) films has been studied using computer simulation by the two-dimensional discrete dislocation dynamics approach. A computational scheme, where pores are modeled as cross sections of cylindrical cavities, elastically interacting with unidirectional parallel edge dislocations, which imitate threading dislocations, is used. Time dependences of coordinates and velocities of each dislocation from dislocation ensembles under investigation are obtained. Visualization of current structure of dislocation ensemble is performed in the form of a location map of dislocations at any time. It has been shown that the density of appearing dislocation structures significantly depends on the ratio of area of a pore cross section to area of the simulation region. In particular, increasing the portion of pores surface on the layer surface up to 2% should lead to about a 1.5-times decrease of the final density of threading dislocations, and increase of this portion up to 15% should lead to approximately a 4.5-times decrease of it.
Citation:
M. Yu. Gutkin, E. A. Rzhavtsev, “Dynamics of threading dislocations in porous heteroepitaxial GaN films”, Fizika Tverdogo Tela, 59:12 (2017), 2370–2376; Phys. Solid State, 59:12 (2017), 2394–2400
\Bibitem{GutRzh17}
\by M.~Yu.~Gutkin, E.~A.~Rzhavtsev
\paper Dynamics of threading dislocations in porous heteroepitaxial GaN films
\jour Fizika Tverdogo Tela
\yr 2017
\vol 59
\issue 12
\pages 2370--2376
\mathnet{http://mi.mathnet.ru/ftt9360}
\crossref{https://doi.org/10.21883/FTT.2017.12.45233.164}
\elib{https://elibrary.ru/item.asp?id=30685639}
\transl
\jour Phys. Solid State
\yr 2017
\vol 59
\issue 12
\pages 2394--2400
\crossref{https://doi.org/10.1134/S1063783417120198}
Linking options:
https://www.mathnet.ru/eng/ftt9360
https://www.mathnet.ru/eng/ftt/v59/i12/p2370
This publication is cited in the following 2 articles:
M.G. Mynbaeva, “Early Attainments of Porous Silicon Carbide Technology: a Bibliographic Digest”, Rev Adv Mater Tech, 3:2 (2021), 27
T. S. Argunova, Zh. V. Gudkina, M. Yu. Gutkin, D. V. Zaytsev, A. E. Kalmykov, A. V. Myasoedov, E. D. Nazarova, P. E. Panfilov, L. M. Sorokin, “Study of dentin structural features by computed microtomography and transmission electron microscopy”, Tech. Phys., 65:9 (2020), 1391–1402