Identifying the Specific Nanostructures Responsible for the High Thermoelectric Performance of (Bi,Sb)<sub>2</sub>Te<sub>3</sub> Nanocomposites

Wenjie Xie(Clemson University), Jian He(Clemson University), Hye Jung Kang(Clemson University), Xinfeng Tang(Wuhan University of Technology), Song Zhu(Clemson University), M. Laver(Paul Scherrer Institute), Shanyu Wang(Wuhan University of Technology), J. R. D. Copley(National Institute of Standards and Technology), Craig M. Brown(National Institute of Standards and Technology), Qingjie Zhang(Wuhan University of Technology), Terry M. Tritt(Clemson University)
Nano Letters
August 5, 2010
Cited by 526

Abstract

Herein, we report the synthesis of multiscale nanostructured p-type (Bi,Sb)(2)Te(3) bulk materials by melt-spinning single elements of Bi, Sb, and Te followed by a spark plasma sintering process. The samples that were most optimized with the resulting composition (Bi(0.48)Sb(1.52)Te(3)) and specific nanostructures showed an increase of approximately 50% or more in the figure of merit, ZT, over that of the commercial bulk material between 280 and 475 K, making it suitable for commercial applications related to both power generation and refrigeration. The results of high-resolution electron microscopy and small angle and inelastic neutron scattering along with corresponding thermoelectric property measurements corroborate that the 10-20 nm nanocrystalline domains with coherent boundaries are the key constituent that accounts for the resulting exceptionally low lattice thermal conductivity and significant improvement of ZT.


Related Papers

No related papers found

Powered by citation graph analysis