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Extreme phonon anharmonicity underpins superionic diffusion and ultralow thermal conductivity in argyrodite Ag8SnSe6.

Publication ,  Journal Article
Ren, Q; Gupta, MK; Jin, M; Ding, J; Wu, J; Chen, Z; Lin, S; Fabelo, O; Rodríguez-Velamazán, JA; Kofu, M; Nakajima, K; Wolf, M; Zhu, F; Ma, J ...
Published in: Nature materials
August 2023

Ultralow thermal conductivity and fast ionic diffusion endow superionic materials with excellent performance both as thermoelectric converters and as solid-state electrolytes. Yet the correlation and interdependence between these two features remain unclear owing to a limited understanding of their complex atomic dynamics. Here we investigate ionic diffusion and lattice dynamics in argyrodite Ag8SnSe6 using synchrotron X-ray and neutron scattering techniques along with machine-learned molecular dynamics. We identify a critical interplay of the vibrational dynamics of mobile Ag and a host framework that controls the overdamping of low-energy Ag-dominated phonons into a quasi-elastic response, enabling superionicity. Concomitantly, the persistence of long-wavelength transverse acoustic phonons across the superionic transition challenges a proposed 'liquid-like thermal conduction' picture. Rather, a striking thermal broadening of low-energy phonons, starting even below 50 K, reveals extreme phonon anharmonicity and weak bonding as underlying features of the potential energy surface responsible for the ultralow thermal conductivity (<0.5 W m-1 K-1) and fast diffusion. Our results provide fundamental insights into the complex atomic dynamics in superionic materials for energy conversion and storage.

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Published In

Nature materials

DOI

EISSN

1476-4660

ISSN

1476-1122

Publication Date

August 2023

Volume

22

Issue

8

Start / End Page

999 / 1006

Related Subject Headings

  • Nanoscience & Nanotechnology
 

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Ren, Q., Gupta, M. K., Jin, M., Ding, J., Wu, J., Chen, Z., … Ma, J. (2023). Extreme phonon anharmonicity underpins superionic diffusion and ultralow thermal conductivity in argyrodite Ag8SnSe6. Nature Materials, 22(8), 999–1006. https://doi.org/10.1038/s41563-023-01560-x
Ren, Qingyong, Mayanak K. Gupta, Min Jin, Jingxuan Ding, Jiangtao Wu, Zhiwei Chen, Siqi Lin, et al. “Extreme phonon anharmonicity underpins superionic diffusion and ultralow thermal conductivity in argyrodite Ag8SnSe6.Nature Materials 22, no. 8 (August 2023): 999–1006. https://doi.org/10.1038/s41563-023-01560-x.
Ren Q, Gupta MK, Jin M, Ding J, Wu J, Chen Z, et al. Extreme phonon anharmonicity underpins superionic diffusion and ultralow thermal conductivity in argyrodite Ag8SnSe6. Nature materials. 2023 Aug;22(8):999–1006.
Ren, Qingyong, et al. “Extreme phonon anharmonicity underpins superionic diffusion and ultralow thermal conductivity in argyrodite Ag8SnSe6.Nature Materials, vol. 22, no. 8, Aug. 2023, pp. 999–1006. Epmc, doi:10.1038/s41563-023-01560-x.
Ren Q, Gupta MK, Jin M, Ding J, Wu J, Chen Z, Lin S, Fabelo O, Rodríguez-Velamazán JA, Kofu M, Nakajima K, Wolf M, Zhu F, Wang J, Cheng Z, Wang G, Tong X, Pei Y, Delaire O, Ma J. Extreme phonon anharmonicity underpins superionic diffusion and ultralow thermal conductivity in argyrodite Ag8SnSe6. Nature materials. 2023 Aug;22(8):999–1006.

Published In

Nature materials

DOI

EISSN

1476-4660

ISSN

1476-1122

Publication Date

August 2023

Volume

22

Issue

8

Start / End Page

999 / 1006

Related Subject Headings

  • Nanoscience & Nanotechnology