Phonon Symphony of Stacked Multilayers and Weak Bonds Lowers Lattice Thermal Conductivity.

Ma, Ni; Zhang, Zhou; Nan, Pengfei; Bai, Wei; Li, Kai; Zhao, Jiyin; Zhou, Shiming; Ge, Binghui et al. · Adv Mater · 2022

basic_science · Level V

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Abstract

Controlling lattice vibrations to obtain intrinsic low thermal conductivity play a critical role in thermal management of electronic and photonic devices, energy converters, and thermal insulation, which necessitates exploring new compounds and a thorough understanding of their chemical structure, bonding, and lattice dynamics. Herein, a new chalcogenide, Ga<sub>6</sub> Cr<sub>5</sub> Se<sub>16</sub> , shows intrinsic low lattice thermal conductivity κ<sub>lat</sub> , which crystallizes in the monoclinic phase (C2/m) with the stacked inverse GaSe<sub>4</sub> layers (g'), close-packed Cr<sup>3+</sup> Se<sub>6</sub> layers (c), GaSe<sub>4</sub> layers (g) and loosely-stacked Cr<sup>2+</sup> Se<sub>6</sub> layers (c') along the c-axis. In this structure, a wide variety of chemical bonding is arranged in each layer, such as covalent Ga-Se, covalent Cr<sup>3+</sup> -Se, and weaker Cr<sup>2+</sup> -Se bonding, which endow it with a large phonon symphony by strong coupling of soft acoustic and low-lying optical phonons. As a result, Ga<sub>6</sub> Cr<sub>5</sub> Se<sub>16</sub> realizes an intrinsic low κ<sub>lat</sub> of 0.79 W m<sup>-</sup> <sup>1</sup>  K<sup>-</sup> <sup>1</sup> at 323 K, which is almost four times, or twice lower than that of Cr<sub>3</sub> Se<sub>4</sub> (2.95 W m<sup>-</sup> <sup>1</sup>  K<sup>-</sup> <sup>1</sup> ), or Cr<sub>2</sub> Se<sub>3</sub> (1.56 W m<sup>-</sup> <sup>1</sup>  K<sup>-</sup> <sup>1</sup> ), Ga<sub>2</sub> Se<sub>3</sub> (1.36 W m<sup>-</sup> <sup>1</sup> K<sup>-</sup> <sup>1</sup> ) at 323 K, respectively. These insights will offer comprehensive understanding of the phonon propagation in complex layered chalcogenides, and also shed useful light on future design of low-κ<sub>lat</sub> solids.