Monolayer enhanced thermoelectric properties compared with bulk for BiTeBr
San-Dong Guo, Hui-Chao Li

TL;DR
This study combines first-principles calculations and Boltzmann transport theory to show that monolayer BiTeBr exhibits superior thermoelectric properties compared to bulk, due to enhanced Seebeck coefficient and lower lattice thermal conductivity.
Contribution
It provides the first detailed comparison of thermoelectric properties between bulk and monolayer BiTeBr using combined computational methods.
Findings
Monolayer BiTeBr has higher $ZT$ than bulk, reaching up to 0.75 in p-type doping.
Monolayer exhibits lower lattice thermal conductivity due to shorter phonon lifetimes.
SOC significantly influences electronic transport coefficients in BiTeBr.
Abstract
It is believed that nanostructuring is an effective way to achieve excellent thermoelectric performance. In the work, by combining the first-principles calculations and semiclassical Boltzmann transport theory, we investigate the thermoelectric properties of bulk and monolayer BiTeBr including both the electron and phonon transports. The generalized gradient approximation (GGA) plus spin-orbit coupling (SOC) is employed for the electron part, and GGA for the phonon part. It is found that SOC has important effects on electronic transport coefficients because of SOC-induced obvious influences on energy band structures. In p-type doping, monolayer has larger Seebeck coefficient than bulk in wide doping range, which is beneficial to excellent thermoelectric performance. The calculated average lattice thermal conductivity of bulk is 1.71 at room temperature, which…
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Taxonomy
TopicsAdvanced Thermoelectric Materials and Devices · Thermal properties of materials · Advanced Thermodynamics and Statistical Mechanics
