Crystal-liquid duality driven ultralow two-channel thermal conductivity in α-MgAgSb

Author:

Li Jingyu12ORCID,Li Xiyang3ORCID,Zhang Yongsheng4ORCID,Zhu Jianbo5ORCID,Zhao Enyue6ORCID,Kofu Maiko7ORCID,Nakajima Kenji7ORCID,Avdeev Maxim8ORCID,Liu Peng-Fei12ORCID,Sui Jiehe5ORCID,Zhao Huaizhou3ORCID,Wang Fangwei36ORCID,Zhang Junrong12

Affiliation:

1. Institute of High Energy Physics, Chinese Academy of Sciences 1 , Beijing 100049, China

2. Spallation Neutron Source Science Center 2 , Dongguan 523803, China

3. Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences 3 , Beijing 100190, China

4. Advanced Research Institute of Multidisciplinary Sciences, Qufu Normal University 4 , Qufu, Shandong Province, 273165, China

5. State Key Laboratory of Advanced Welding and Joining, Harbin Institute of Technology 5 , Harbin 150001, China

6. Songshan Lake Materials Laboratory 6 , Dongguan 523808, China

7. Japan Proton Accelerator Research Complex, Japan Atomic Energy Agency 7 , Tokai, Ibaraki 319-1195, Japan

8. Australian Nuclear Science and Technology Organisation, Lucas Heights 8 , NSW 2234, Australia

Abstract

The desire for intrinsically low lattice thermal conductivity (κL) in thermoelectrics motivates numerous efforts on understanding the microscopic mechanisms of heat transport in solids. Here, based on theoretical calculations, we demonstrate that α-MgAgSb hosts low-energy localized phonon bands and avoided crossing of the rattler modes, which coincides with the inelastic neutron scattering result. Using the two-channel lattice dynamical approach, we find, besides the conventional contribution (∼70% at 300 K) from particlelike phonons propagating, the coherence contribution dominated by the wavelike tunneling of phonons accounts for ∼30% of the total κL at 300 K. By considering dual contributions, our calculated room-temperature κL of 0.64 W m−1 K−1 well agrees with the experimental value of 0.63 W m−1 K−1. More importantly, our computations give a nonstandard κL ∝ T−0.61 dependence, perfectly explaining the abnormal temperature-trend of ∼T−0.57 in experiment for α-MgAgSb. By molecular dynamics simulation, we reveal that the structure simultaneously has soft crystalline sublattices with the metavalent bonding and fluctuating liquid-like sublattices with thermally induced large amplitude vibrations. These diverse forms of chemical bonding arouse mixed part-crystal part-liquid state, scatter strongly heat-carrying phonons, and finally produce extremely low κL. The fundamental research from this study will accelerate the design of ultralow-κL materials for energy-conversion applications.

Funder

guangdong basic and applied basic research foundation

National Natural Science Foundation of China

Taishan Scholar Project of Shandong Province

Publisher

AIP Publishing

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