Thermoelectric materials create an electric potential when subject to a
temperature gradient and vice versa hence they can be used to harvest waste
heat into electricity and in thermal management applications. However, finding
highly efficient thermoelectrics with high figures of merit, zT≥1, is very
challenging because the combination of high power factor and low thermal
conductivity is rare in materials. Here, we use first-principles methods to
analyze the thermoelectric properties of Li2SnX3 (X=S,Se), a recently
synthesized class of lithium fast-ion conductors presenting high thermal
stability. In p-type Li2SnX3, we estimate highly flat electronic valence
bands that render high Seebeck coefficients exceeding 400 μVK−1 at
700K. In n-type Li2SnX3, the electronic conduction bands are slightly
dispersive however the accompanying weak electron-acoustic phonon scattering
induces high electrical conductivity. The combination of high Seebeck
coefficient and electrical conductivity gives rise to high power factors,
reaching a maximum of 4 mWm−1K−2 in p-type Li2SnS3 and 8
mWm−1K−2 in n-type Li2SnSe3 at 300 K. Likewise, the thermal
conductivity in Li2SnX3 is low as compared to conventional thermoelectric
materials, 2-5 Wm−1K−1 at room temperature. As a result, we estimate
a maximum zT = 1.05 in p-type Li2SnS3 at 700 K and an extraordinary 3.07
(1.5) in n-type Li2SnSe3 at the same temperature (300 K). Our findings of
huge zT in Li2SnX3 suggest that lithium fast-ion conductors, typically
employed as electrolytes in solid-state batteries, hold exceptional promise as
thermoelectric materials.Comment: 21 Page