Thickness_dependent_surface_energy.pdf (10.7 MB)
Thickness-dependent surface energy and formation of epitaxial quantum dots
journal contribution
posted on 2020-11-12, 14:17 authored by Kirill A Lozovoy, Ying Zhou, Roger Smith, Adam Lloyd, Andrey P Kokhanenko, Vladimir V Dirko, Nataliya Yu Akimenko, Denis V Grigoryev, Alexander V Voitsekhovskii© 2020 Elsevier B.V. Numerous theoretical and experimental studies show that during epitaxial growth according to the Stranski-Krastanow mechanism in systems mismatched by the lattice constant, the change in the surface energy of the system during nucleation and further growth of quantum dots, plays the most important role. In particular, this factor determines the equilibrium and critical thicknesses of the transition from two-dimensional to three-dimensional growth, and also affects other kinetic characteristics of the ensemble of nanoclusters, including the nucleation rate, surface density, and average size of the islands. Recent theoretical studies have made it possible to determine that the surface energy in this process depends on the thickness of the material deposited on the substrate. In this paper, we construct a kinetic model of the formation and coherent growth of two-dimensional layers and quantum dots in mismatched epitaxial systems, taking into account the dependence of the specific surface energies on the thickness of the deposited material. In this approximation, we calculate the basic parameters of the formed array of nanoislands. Experimental studies were also carried out on the growth of two-dimensional layers and quantum dots of germanium on the silicon (100) surface. The results of experimental investigations confirm the proposed theoretical model.
History
School
- Science
Department
- Mathematical Sciences
Published in
Thin Solid FilmsVolume
713Publisher
Elsevier BVVersion
- AM (Accepted Manuscript)
Rights holder
© ElsevierPublisher statement
This paper was accepted for publication in the journal Thin Solid Films and the definitive published version is available at https://doi.org/10.1016/j.tsf.2020.138363Acceptance date
2020-09-25Publication date
2020-09-30Copyright date
2020ISSN
0040-6090eISSN
1879-2731Publisher version
Language
- en
Location
Korean Inst Elect & Elect Mat Engineers, Jeju, SOUTH KOREADepositor
Prof Roger Smith Deposit date: 11 November 2020Article number
138363Usage metrics
Categories
No categories selectedKeywords
Two-dimensional materialsQuantum dotsMolecular beam epitaxyStranski-Krastanow growth mechanismScience & TechnologyTechnologyPhysical SciencesMaterials Science, MultidisciplinaryMaterials Science, Coatings & FilmsPhysics, AppliedPhysics, Condensed MatterMaterials SciencePhysicsSTRESS-DRIVEN NUCLEATIONSTRANSKI-KRASTANOWELASTIC RELAXATIONCOHERENT ISLANDSGEGROWTHNANOSTRUCTURESMORPHOLOGYSI(100)SI(111)Applied PhysicsEngineering