Achieving Ultralow Lattice Thermal Conductivity and High Thermoelectric Performance in GeTe Alloys via Introducing Cu<sub>2</sub>Te Nanocrystals and Resonant Level Doping.
basic_science · Level V
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- Also identified by DOI 10.1021/acsnano.1c05650.
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Abstract
The binary compound of GeTe emerging as a potential medium-temperature thermoelectric material has drawn a great deal of attention. Here, we achieve ultralow lattice thermal conductivity and high thermoelectric performance in In and a heavy content of Cu codoped GeTe thermoelectrics. In dopants improve the density of state near the surface of Femi of GeTe by introducing resonant levels, producing a sharp increase of the Seebeck coefficient. In and Cu codoping not only optimizes carrier concentration but also substantially increases carrier mobility to a high value of 87 cm<sup>2</sup> V<sup>-1</sup> s<sup>-1</sup> due to the diminution of Ge vacancies. The enhanced Seebeck coefficient coupled with dramatically enhanced carrier mobility results in significant enhancement of PF in Ge<sub>1.04-<i>x</i>-<i>y</i></sub>In<sub><i>x</i></sub>Cu<sub><i>y</i></sub>Te series. Moreover, we introduce Cu<sub>2</sub>Te nanocrystals' secondary phase into GeTe by alloying a heavy content of Cu. Cu<sub>2</sub>Te nanocrystals and a high density of dislocations cause strong phonon scattering, significantly diminishing lattice thermal conductivity. The lattice thermal conductivity reduced as low as 0.31 W m<sup>-1</sup> K<sup>-1</sup> at 823 K, which is not only lower than the amorphous limit of GeTe but also competitive with those of thermoelectric materials with strong lattice anharmonicity or complex crystal structures. Consequently, a high <i>ZT</i> of 2.0 was achieved for Ge<sub>0.9</sub>In<sub>0.015</sub>Cu<sub>0.125</sub>Te by decoupling electron and phonon transport of GeTe. This work highlights the importance of phonon engineering in advancing high-performance GeTe thermoelectrics.