2017•ECS TransactionsOpen access

(Invited) Nanostructure Design for Control of Phonon and Electron Transports

Yoshiaki Nakamura, Kentaro Watanabe

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Abstract

Simultaneous achievement of low thermal conductivity κ and high electrical conductivity σ is a promising route for realizing Si-based thermoelectric materials. Although several attempts have been made, this requirement has still been bottlenecked by their correlated nature. In order to realize low κ and high σ simultaneously, we have proposed a nanoarchitecture that is Si films including epitaxial Ge nanodots. This nanoarchitecture was fabricated based on molecular beam epitaxy, where Ge nanodots and Si layer were stacked alternately on Si substrates using unique ultrathin SiO 2 film technique. In this study, we investigated the impact of Ge nanodot incorporation and doping on the κ and σ . The κ was significantly reduced by Ge nanodot incorporation whereas the σ exhibited high value coming from Si property. This demonstrated the accomplishment of the nanostructure design for the independent control of carrier and phonon transport using the ultrasmall epitaxial Ge nanodots.

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Simultaneous achievement of low thermal conductivity κ and high electrical conductivity σ is a promising route for realizing Si-based thermoelectric materials. Although several attempts have been made, this requirement has still been bottlenecked by their correlated nature. In order to realize low κ and high σ simultaneously, we have proposed a nanoarchitecture that is Si films including epitaxial Ge nanodots. This nanoarchitecture was fabricated based on molecular beam epitaxy, where Ge nanodots and Si layer were stacked alternately on Si substrates using unique ultrathin SiO 2 film technique. In this study, we investigated the impact of Ge nanodot incorporation and doping on the κ and σ . The κ was significantly reduced by Ge nanodot incorporation whereas the σ exhibited high value coming from Si property. This demonstrated the accomplishment of the nanostructure design for the independent control of carrier and phonon transport using the ultrasmall epitaxial Ge nanodots.

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Available abstract

Simultaneous achievement of low thermal conductivity κ and high electrical conductivity σ is a promising route for realizing Si-based thermoelectric materials. Although several attempts have been made, this requirement has still been bottlenecked by their correlated nature. In order to realize low κ and high σ simultaneously, we have proposed a nanoarchitecture that is Si films including epitaxial Ge nanodots. This nanoarchitecture was fabricated based on molecular beam epitaxy, where Ge nanodots and Si layer were stacked alternately on Si substrates using unique ultrathin SiO 2 film technique. In this study, we investigated the impact of Ge nanodot incorporation and doping on the κ and σ . The κ was significantly reduced by Ge nanodot incorporation whereas the σ exhibited high value coming from Si property. This demonstrated the accomplishment of the nanostructure design for the independent control of carrier and phonon transport using the ultrasmall epitaxial Ge nanodots.

Key concepts: Nanodot, Materials science, Epitaxy, Nanostructure, Nanotechnology, Optoelectronics, Doping, Phonon

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