Hidden Local Symmetry Breaking in Silver Diamondoid Compounds is Root Cause of Ultralow Thermal Conductivity.

Xie, Hongyao; Bozin, Emil S; Li, Zhi; Abeykoon, Milinda; Banerjee, Soham; Male, James P; Snyder, G Jeffrey; Wolverton, Christopher et al. · Adv Mater · 2022

basic_science · Level V

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Abstract

Typically, conventional structure transitions occur from a low symmetry state to a higher symmetry state upon warming. In this work, an unexpected local symmetry breaking in the tetragonal diamondoid compound AgGaTe<sub>2</sub> is reported, which, upon warming, evolves continuously from an undistorted ground state to a locally distorted state while retaining average crystallographic symmetry. This is a rare phenomenon previously referred to as emphanisis. This distorted state, caused by the weak sd<sup>3</sup> orbital hybridization of tetrahedral Ag atoms, causes their displacement off the tetrahedron center and promotes a global distortion of the crystal structure resulting in strong acoustic-optical phonon scattering and an ultralow lattice thermal conductivity of 0.26 W m<sup>-1</sup> K<sup>-1</sup> at 850 K in AgGaTe<sub>2</sub> . The findings explain the underlying reason for the unexpectedly low thermal conductivities of silver-based compounds compared to copper-based analogs and provide a guideline to suppressing heat transport in diamondoid and other materials.