An insight into thermal properties of BC3-graphene hetero-nanosheets: a molecular dynamics study

dc.contributor.authorMaryam Zarghami Dehaghani
dc.contributor.authorFatemeh Molaei
dc.contributor.authorFarrokh Yousefi
dc.contributor.authorS. Mohammad Sajadi
dc.contributor.authorAmin Esmaeili
dc.contributor.authorAhmad Mohaddespour
dc.contributor.authorOmid Farzadian
dc.contributor.authorSajjad Habibzadeh
dc.contributor.authorAmin Hamed Mashhadzadeh
dc.contributor.authorChristos Spitas
dc.contributor.authorMohammad Reza Saeb
dc.date.accessioned2025-08-21T08:59:11Z
dc.date.available2025-08-21T08:59:11Z
dc.date.issued2021-11-29
dc.description.abstractSimulation of thermal properties of graphene hetero-nanosheets is a key step in understanding their performance in nano-electronics where thermal loads and shocks are highly likely. Herein we combine graphene and boron-carbide nanosheets (BC3N) heterogeneous structures to obtain BC3N-graphene hetero-nanosheet (BC3GrHs) as a model semiconductor with tunable properties. Poor thermal properties of such heterostructures would curb their long-term practice. BC3GrHs may be imperfect with grain boundaries comprising non-hexagonal rings, heptagons, and pentagons as topological defects. Therefore, a realistic picture of the thermal properties of BC3GrHs necessitates consideration of grain boundaries of heptagon-pentagon defect pairs. Herein thermal properties of BC3GrHs with various defects were evaluated applying molecular dynamic (MD) simulation. First, temperature profiles along BC3GrHs interface with symmetric and asymmetric pentagon-heptagon pairs at 300 K, ΔT = 40 K, and zero strain were compared. Next, the effect of temperature, strain, and temperature gradient (ΔT) on Kapitza resistance (interfacial thermal resistance at the grain boundary) was visualized. It was found that Kapitza resistance increases upon an increase of defect density in the grain boundary. Besides, among symmetric grain boundaries, 5–7–6–6 and 5–7–5–7 defect pairs showed the lowest (2 × 10−10 m2 K W−1) and highest (4.9 × 10−10 m2 K W−1) values of Kapitza resistance, respectively. Regarding parameters affecting Kapitza resistance, increased temperature and strain caused the rise and drop in Kapitza thermal resistance, respectively. However, lengthier nanosheets had lower Kapitza thermal resistance. Moreover, changes in temperature gradient had a negligible effect on the Kapitza resistance.en
dc.identifier.citationDehaghani Maryam Zarghami, Molaei Fatemeh, Yousefi Farrokh, Sajadi S. Mohammad, Esmaeili Amin, Mohaddespour Ahmad, Farzadian Omid, Habibzadeh Sajjad, Mashhadzadeh Amin Hamed, Spitas Christos, Saeb Mohammad Reza. (2021). An insight into thermal properties of BC3-graphene hetero-nanosheets: a molecular dynamics study. Scientific Reports. https://doi.org/10.1038/s41598-021-02576-6en
dc.identifier.doi10.1038/s41598-021-02576-6
dc.identifier.urihttps://doi.org/10.1038/s41598-021-02576-6
dc.identifier.urihttps://nur.nu.edu.kz/handle/123456789/9745
dc.language.isoen
dc.publisherSpringer Science and Business Media LLC
dc.relation.ispartofScientific Reportsen
dc.rightsAll rights reserveden
dc.sourceScientific Reports, 11, —, (2021)en
dc.titleAn insight into thermal properties of BC3-graphene hetero-nanosheets: a molecular dynamics studyen
dc.typeJournal Articleen

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