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Investigation of Low-Energy Lattice Dynamics and Their Role in Superionic Na Diffusion and Ultralow Thermal Conductivity of Na3PSe4 as a Solid-State Electrolyte

Publication ,  Journal Article
Gupta, MK; Ding, J; Lin, HM; Hood, Z; Osti, NC; Abernathy, DL; Yakovenko, AA; Wang, H; Delaire, O
Published in: Chemistry of Materials
December 10, 2024

The atomic dynamics of Na3PSe4 were investigated using a combination of neutron scattering experiments and ab initio and machine-learned molecular dynamics simulations to probe the interplay of fast ionic diffusion with atomic vibrations (phonons) of the host lattice. Our results reveal the existence of low-energy vibrational modes, simultaneously involving motions of Na+ ions and framework polyanion subunits, and show that these modes become strongly overdamped in the superionic regime as they couple with the Na+ hopping process. In particular, the Na+ migration energy landscape is strongly impacted by low-energy phonons derived from a soft acoustic branch of the host lattice, which modulates the diameter of the Na+ diffusion channel at the bottleneck. We find that an additional factor for the enhanced Na+ conductivity in Na3PSe4 is the presence of Na-vacancies, which also affect the low-frequency dynamics and thermal vibration amplitudes, pointing to an interplay between Na+ vacancies and host dynamics, jointly enhancing ionic diffusivity. Finally, we investigate the origin of ultralow thermal conductivities in Na3PSe4 and Na3PS4 using Green-Kubo simulations and find that low-energy acoustic phonon modes of the overall crystal framework provide a dominant contribution to the thermal conductivity.

Duke Scholars

Published In

Chemistry of Materials

DOI

EISSN

1520-5002

ISSN

0897-4756

Publication Date

December 10, 2024

Volume

36

Issue

23

Start / End Page

11377 / 11392

Related Subject Headings

  • Materials
  • 40 Engineering
  • 34 Chemical sciences
  • 09 Engineering
  • 03 Chemical Sciences
 

Citation

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Gupta, M. K., Ding, J., Lin, H. M., Hood, Z., Osti, N. C., Abernathy, D. L., … Delaire, O. (2024). Investigation of Low-Energy Lattice Dynamics and Their Role in Superionic Na Diffusion and Ultralow Thermal Conductivity of Na3PSe4 as a Solid-State Electrolyte. Chemistry of Materials, 36(23), 11377–11392. https://doi.org/10.1021/acs.chemmater.4c01553
Gupta, M. K., J. Ding, H. M. Lin, Z. Hood, N. C. Osti, D. L. Abernathy, A. A. Yakovenko, H. Wang, and O. Delaire. “Investigation of Low-Energy Lattice Dynamics and Their Role in Superionic Na Diffusion and Ultralow Thermal Conductivity of Na3PSe4 as a Solid-State Electrolyte.” Chemistry of Materials 36, no. 23 (December 10, 2024): 11377–92. https://doi.org/10.1021/acs.chemmater.4c01553.
Gupta MK, Ding J, Lin HM, Hood Z, Osti NC, Abernathy DL, et al. Investigation of Low-Energy Lattice Dynamics and Their Role in Superionic Na Diffusion and Ultralow Thermal Conductivity of Na3PSe4 as a Solid-State Electrolyte. Chemistry of Materials. 2024 Dec 10;36(23):11377–92.
Gupta, M. K., et al. “Investigation of Low-Energy Lattice Dynamics and Their Role in Superionic Na Diffusion and Ultralow Thermal Conductivity of Na3PSe4 as a Solid-State Electrolyte.” Chemistry of Materials, vol. 36, no. 23, Dec. 2024, pp. 11377–92. Scopus, doi:10.1021/acs.chemmater.4c01553.
Gupta MK, Ding J, Lin HM, Hood Z, Osti NC, Abernathy DL, Yakovenko AA, Wang H, Delaire O. Investigation of Low-Energy Lattice Dynamics and Their Role in Superionic Na Diffusion and Ultralow Thermal Conductivity of Na3PSe4 as a Solid-State Electrolyte. Chemistry of Materials. 2024 Dec 10;36(23):11377–11392.
Journal cover image

Published In

Chemistry of Materials

DOI

EISSN

1520-5002

ISSN

0897-4756

Publication Date

December 10, 2024

Volume

36

Issue

23

Start / End Page

11377 / 11392

Related Subject Headings

  • Materials
  • 40 Engineering
  • 34 Chemical sciences
  • 09 Engineering
  • 03 Chemical Sciences