PHONON THERMAL TRANSPORT SUPPRESSION IN Si/SiO 2 CRYSTALLINE/AMORPHOUS SUPERLATTICES

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dc.contributor.author Cocemasov, Alexandr
dc.contributor.author Nika, Denis
dc.date.accessioned 2021-12-13T12:05:42Z
dc.date.available 2021-12-13T12:05:42Z
dc.date.issued 2019-12
dc.identifier.citation COCEMASOV, A., NIKA, D. Phonon thermal transport suppression in Si/SiO 2 crystalline/amorphous superlattices. In: Eighteenth Young Researchers' Conference Materials Sciences and Engineering, December 4-6, 2019, Belgrade, Serbia. Belgrade : Institute of Technical Sciences of SASA, 2019. p.68. ISBN 978-86-80321-35-6. en
dc.identifier.isbn 978-86-80321-35-6
dc.identifier.uri https://dais.sanu.ac.rs/handle/123456789/6671
dc.identifier.uri http://dspace.usm.md:8080/xmlui/handle/123456789/5133
dc.description.abstract Clear understanding of phonon properties in nanostructures is instrumental in design of novel thermoelectric materials [1-3]. Crystalline/amorphous superlattices (CASLs) consisting of alternated crystalline and amorphous layers are promising in tailoring the thermoelectric properties because they can be made of materials with distinctly different physical and chemical properties. Here we report on theoretical study of phonon thermal transport in c- Si/a-SiO2 CASLs, which remain less explored in the literature [4]. Comparing equations for lattice thermal conductivity within linearized Boltzmann transport equation [5-6] and Allen- Feldman theory of diffusive thermal transport [7-8] we have obtained an expression for the rate of diffusion of lattice vibrations in a-SiO2 layers. The obtained expression is parameter- free and can be used for a wide range of amorphous materials. The performed theoretical study have showed, that heat transport in c-Si/a-SiO2 CASLs is strongly suppressed as compared to purely crystalline c-Si/c-SiO2 superlattices. Owing to the reduced lattice thermal conductivity, we conclude that c-Si/a-SiO2 CASLs show promise for thermoelectric applications. en
dc.description.sponsorship Acknowledgements: The work was supported by moldovan government within projects #15.817.02.29F and #19.80012.02.13F. en
dc.language.iso en en
dc.publisher Belgrad: Institute of Technical Sciences of SASA en
dc.subject materials science en
dc.subject nanotechnology en
dc.subject physical chemistry en
dc.title PHONON THERMAL TRANSPORT SUPPRESSION IN Si/SiO 2 CRYSTALLINE/AMORPHOUS SUPERLATTICES en
dc.type Article en


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