open access publication

Article, 2024

Lattice dynamics and heat transport in zeolitic imidazolate framework glasses

The Journal of Chemical Physics, ISSN 1089-7690, 0021-9606, Volume 160, 12, Page 124502, 10.1063/5.0196613

Contributors

Yuan, Chengyang [1] [2] Sørensen, Søren Strandskov 0000-0003-2230-7823 [1] Du, Tao 0000-0003-2402-6320 [1] Zhang, Zhongyin [3] Song, Yong Chen [2] Shi, Ying 0000-0002-4136-1086 [4] Neuefeind, Jörg C [5] Smedskjaer, Morten Mattrup 0000-0003-0476-2021 (Corresponding author) [1]

Affiliations

  1. [1] Aalborg University
  2. [NORA names: AAU Aalborg University; University; Denmark; Europe, EU; Nordic; OECD];
  3. [2] Dalian University of Technology
  4. [NORA names: China; Asia, East];
  5. [3] Northwestern Polytechnical University
  6. [NORA names: China; Asia, East];
  7. [4] Corning (United States)
  8. [NORA names: United States; America, North; OECD];
  9. [5] Oak Ridge National Laboratory
  10. [NORA names: United States; America, North; OECD]

Abstract

The glassy state of zeolitic imidazolate frameworks (ZIFs) has shown great potential for energy-related applications, including solid electrolytes. However, their thermal conductivity (κ), an essential parameter influencing thermal dissipation, remains largely unexplored. In this work, using a combination of experiments, atomistic simulations, and lattice dynamics calculations, we investigate κ and the underlying heat conduction mechanism in ZIF glasses with varying ratios of imidazolate (Im) to benzimidazolate (bIm) linkers. The substitution of bIm for Im tunes the node-linker couplings but exhibits only a minor impact on the average diffusivity of low-frequency lattice modes. On the other hand, the linker substitution induces significant volume expansion, which, in turn, suppresses the contributions from lattice vibrations to κ, leading to decreased total heat conduction. Furthermore, spatial localization of internal high-frequency linker vibrations is promoted upon substitution, reducing their mode diffusivities. This is ascribed to structural deformations of the bIm units in the glasses. Our work unveils the detailed influences of linker substitution on the dual heat conduction characteristics of ZIF glasses and guides the κ regulation of related hybrid materials in practical applications.

Keywords

BIM, Im, applications, atomistic simulations, average diffusivity, benzimidazole, calculations, combination, combination of experiments, conduction mechanism, conductivity, contribution, coupling, deformation, diffusivities, dissipation, dynamics, dynamics calculations, electrolyte, energy-related applications, expansion, experiments, framework, glass, glassy state, heat, heat conduction, heat conduction mechanism, heat transport, hybrid, hybrid materials, imidazolate frameworks, imidazole, impact, influence, investigation K, lattice, lattice dynamics, lattice dynamics calculations, lattice modes, lattice vibrations, linker, linker substitution, low-frequency lattice modes, materials, mechanism, mode, parameters, potential, ratio, regulation, simulation, solid electrolyte, spatial localization, state, structural deformation, substitution, thermal conductivity, thermal dissipation, total heat conductivity, transport, units, vibration, volume, volume expansion, zeolitic imidazolate framework, zeolitic imidazolate framework glasses

Funders

  • China Scholarship Council
  • Office of Science

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