Effects of impurities on the lattice dynamics of nanocrystalline silicon for thermoelectric application

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Abstract

Doped silicon nanoparticles were exposed to air and sintered to form nanocrystalline silicon. The composition, microstructure, and structural defects were investigated with TEM, XRD, and PDF and the lattice dynamics was evaluated with measurements of the heat capacity, of the elastic constants with resonant ultrasound spectroscopy and of the density of phonon states (DPS) with inelastic neutron scattering. The results were combined and reveal that the samples contain a large amount of silicon dioxide and exhibit properties that deviate from bulk silicon. Both in the reduced DPS and in the heat capacity a Boson peak at low energies, characteristic of amorphous SiO2, is observed. The thermal conductivity is strongly reduced due to nanostructuration and the incorporation of impurities. © 2012 The Author(s).

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Claudio, T., Schierning, G., Theissmann, R., Wiggers, H., Schober, H., Koza, M. M., & Hermann, R. P. (2013). Effects of impurities on the lattice dynamics of nanocrystalline silicon for thermoelectric application. Journal of Materials Science, 48(7), 2836–2845. https://doi.org/10.1007/s10853-012-6827-y

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