Literature DB >> 28771320

In-Plane Thermal Conductivity of Radial and Planar Si/SiOx Hybrid Nanomembrane Superlattices.

Guodong Li1, Milad Yarali2, Alexandr Cocemasov3, Stefan Baunack, Denis L Nika3, Vladimir M Fomin3, Shivkant Singh2, Thomas Gemming, Feng Zhu1, Anastassios Mavrokefalos2, Oliver G Schmidt1.   

Abstract

Silicon, although widely used in modern electronic devices, has not yet been implemented in thermoelectric applications mainly due to its high thermal conductivity, κ, which leads to an extremely low thermoelectric energy conversion efficiency (figure of merit). Here, we present an approach to manage κ of Si thin-film-based nanoarchitectures through the formation of radial and planar Si/SiOx hybrid nanomembrane superlattices (HNMSLs). For the radial Si/SiOx HNMSLs with various numbers of windings (1, 2, and 5 windings), we observe a continuous reduction in κ with increasing number of windings. Meanwhile, the planar Si/SiOx HNMSL, which is fabricated by mechanically compressing a five-windings rolled-up microtube, shows the smallest in-plane thermal conductivity among all the reported values for Si-based superlattices. A theoretical model proposed within the framework of the Born-von Karman lattice dynamics to quantitatively interpret the experimental data indicates that the thermal conductivity of Si/SiOx HNMSLs is to a great extent determined by the phonon processes in the SiOx layers.

Entities:  

Keywords:  BvK lattice dynamics; hybrid nanomembrane superlattice; silicon-based thermoelectrics; strain-engineered rolling and compressing technique; thermal conductivity

Year:  2017        PMID: 28771320     DOI: 10.1021/acsnano.7b03219

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  1 in total

1.  Thermal Transport Evolution Due to Nanostructural Transformations in Ga-Doped Indium-Tin-Oxide Thin Films.

Authors:  Alexandr Cocemasov; Vladimir Brinzari; Do-Gyeom Jeong; Ghenadii Korotcenkov; Sergiu Vatavu; Jong S Lee; Denis L Nika
Journal:  Nanomaterials (Basel)       Date:  2021-04-27       Impact factor: 5.076

  1 in total

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