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Published May 28, 2018 | Supplemental Material
Journal Article Open

Observation of valence band crossing: the thermoelectric properties of CaZn_2Sb_2–CaMg_2Sb_2 solid solution

Abstract

CaAl_2Si_2 type Zintl phases have long been known to be promising thermoelectric materials. Here we report for the first time on the thermoelectric properties of CaMg_2Sb_2 along with the transport properties of CaZn_2Sb_2–CaMg_2Sb_2 solid solution. The charge carrier tuning in this system was carried out by substituting divalent Ca^(2+) with monovalent Na^+. To check a possible band convergence, we applied an effective mass analysis to our samples and found an abrupt doubling of the samples' effective masses as the composition switches from Zn-rich to Mg-rich. We further analyzed the effect that alloy scattering plays in the lattice thermal conductivity of our samples with a Modified Klemens model. We showed that the reduction seen in the lattice thermal conductivity of the alloyed samples can be well explained based on the mass difference of Mg and Zn in the poly-anionic metal site. Our best p-doped sample with a composition of Ca_(.99)Na_(.01)MgZnSb_2 displays a relatively high peak zT of 0.87 at 850 K.

Additional Information

© 2018 The Royal Society of Chemistry. The article was received on 09 Mar 2018, accepted on 05 Apr 2018 and first published on 05 Apr 2018. This research was carried out under a contract with the National Aeronautics and Space Administration and was supported by the NASA Science Missions Directorate's Radioisotope Power Systems Technology Advancement Program. This work made use of the J. B. Cohen X-Ray Diffraction Facility supported by the MRSEC program of the National Science Foundation (DMR-1720139) at the Materials Research Center of Northwestern University and the Soft and Hybrid Nanotechnology Experimental (SHyNE) Resource (NSF ECCS-1542205).

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