4.6 Article

Nanocrystalline silicon: lattice dynamics and enhanced thermoelectric properties

Journal

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
Volume 16, Issue 47, Pages 25701-25709

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c3cp53749h

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Funding

  1. Helmholtz Gemeinschaft Deutscher Forschungszentren [VH NG-407]
  2. Deutsche Forschungsgemeinschaft, DFG through the program SPP1386 Nanostukturierte Thermoelektrika

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Silicon has several advantages when compared to other thermoelectric materials, but until recently it was not used for thermoelectric applications due to its high thermal conductivity, 156 W K-1 m(-1) at room temperature. Nanostructuration as means to decrease thermal transport through enhanced phonon scattering has been a subject of many studies. In this work we have evaluated the effects of nano-structuration on the lattice dynamics of bulk nanocrystalline doped silicon. The samples were prepared by gas phase synthesis, followed by current and pressure assisted sintering. The heat capacity, density of phonons states, and elastic constants were measured, which all reveal a significant, approximate to 25%, reduction in the speed of sound. The samples present a significantly decreased lattice thermal conductivity, approximate to 25 W K-1 m(-1), which, combined with a very high carrier mobility, results in a dimensionless figure of merit with a competitive value that peaks at ZT approximate to 0.57 at 973 degrees C. Due to its easily scalable and extremely low-cost production process, nanocrystalline Si prepared by gas phase synthesis followed by sintering could become the material of choice for high temperature thermoelectric generators.

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