paper

First principle design of new thermoelectrics from TiNiSn based pentanary alloys based on 18 valence electron rule

arXiv:2110.09827

Abstract

In this study, we have reported electronic structure, lattice dynamics, and thermoelectric (TE) transport properties of a new family of pentanary substituted TiNiSn systems using the 18 valence electron count (VEC) rule. From our calculated band structures and density of states, we show that by preserving the 18 VEC through aliovalent substitutions at the Ti site of TiNiSn semiconducting behavior can be achieved, and hence one can tune the band structure and band gap to maximize the thermoelectric figure of merit (ZT) value. Two approaches have been used for calculating the lattice thermal conductivity (), one by fully solving the linearized phonon Boltzmann transport (LBTE) equation from firstprinciples anharmonic lattice dynamics calculations implemented in Phono3py code and other using Slack's equation with calculated Debye temperature and Grüneisen parameter using the calculated elastic constant values. The calculated values decrease from parent TiNiSn to pentanary substituted TiNiSn systems as expected due to fluctuation in atomic mass. The calculated for Hf containing systems LaHfVNiSn and non Hf containing system LaZrVNiSn calculated from Phono3py (Slack's equation) are found to be 0.37 (1.04) and 0.16 (0.95) W/mK, at 550\,K, respectively and the corresponding ZT value are found to be 0.54 (0.4) and 0.77 (0.53). Among the considered systems, the calculated phonon spectra and heat capacity show that LaHfVNiSn has more opticalacoustic band mixing which creates more phononphonon scattering and hence lower the value and maximizing the ZT. Based on the calculated results we conclude that one can design high-efficiency thermoelectric materials by considering the 18 VEC rule with aliovalent substitution.

16 pages, 10 figures, full article