2006
DOI: 10.1103/physrevb.74.134108
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Effect of disorder on the thermal transport and elastic properties in thermoelectricZn4Sb3

Abstract: Zn 4 Sb 3 undergoes a phase transition from ␣ to ␤ phase at T 1 Ϸ 250 K. The high temperature ␤-Zn 4 Sb 3 phase has been widely investigated as a potential state-of-the-art thermoelectric ͑TE͒ material, due to its remarkably low thermal conductivity. We have performed electronic and thermal transport measurements exploring the structural phase transition at 250 K. The ␣ to ␤ phase transition manifests itself by anomalies in the resistivity, thermopower, and specific heat at 250 K as well as by a reduction in t… Show more

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Cited by 68 publications
(49 citation statements)
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“…Assuming that these phonon interactions are the dominant scattering term for the heat transport, a simple kinetic gas theory model yields a thermal conductivity c v v s l=3 13:2 mW K ÿ1 cm ÿ1 , where c v 1:68 J K ÿ1 cm ÿ3 is the specific heat (per unit volume) at 300 K, close to the Dulong-Petit limit. This estimation agrees favorably with the recently measured lattice thermal conductivity 13 mW K ÿ1 cm ÿ1 at 300 K obtained by the steady state method [10]. These results are at variance with an earlier lower estimation [11], obtained by thermal diffusivity, involving a smaller heat capacity, smaller sound velocity and a larger carrier concentration.…”
Section: -2 Axis Model (Ii) or (Iii) Possible Correlations Tosupporting
confidence: 90%
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“…Assuming that these phonon interactions are the dominant scattering term for the heat transport, a simple kinetic gas theory model yields a thermal conductivity c v v s l=3 13:2 mW K ÿ1 cm ÿ1 , where c v 1:68 J K ÿ1 cm ÿ3 is the specific heat (per unit volume) at 300 K, close to the Dulong-Petit limit. This estimation agrees favorably with the recently measured lattice thermal conductivity 13 mW K ÿ1 cm ÿ1 at 300 K obtained by the steady state method [10]. These results are at variance with an earlier lower estimation [11], obtained by thermal diffusivity, involving a smaller heat capacity, smaller sound velocity and a larger carrier concentration.…”
Section: -2 Axis Model (Ii) or (Iii) Possible Correlations Tosupporting
confidence: 90%
“…The measured heat capacity is identical to that reported in Ref. [10], except for a sharper signature of the first order phase transition at 250 K in the present sample.…”
supporting
confidence: 89%
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