The Role of Electron–Phonon Interactions on Electronic Transitions of Molecular Energetic Crystals

Abstract Despite recent progress in elucidating electronic and phononic contributions to phase transformations and bond scission in molecular energetic crystals, the role of electron–phonon coupling (EPC) remains elusive. Herein, we investigate electron–phonon interactions in β-HMX under hydrostatic pressure using first-principles density functional theory (DFT) based calculations. The EPC strength is found to vary with pressure, with dominant contributions arising from electrons scattering with optical phonons in the frequency range 667–1334 cm–1 near the Γ-point, primarily associated with N–NO2 bending vibrations. The incorporation of electron–phonon interactions leads to substantial bandgap renormalization up to −478 meV at 400 K and 10 GPa. Pressure further enhances electron lifetimes, suppressing electron–phonon scattering rates and enhancing electrical conductivity and the electronic contribution to thermal conductivity near the band edges. This study provides an alternative framework for providing atomistic insights into the mechanisms that influence the sensitivity of energetic crystals.

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Publication Details

Journal
The Journal of Physical Chemistry Letters
Published
2026-09-18
DOI
https://doi.org/10.1021/acs.jpclett.6c02444
Primary Topic
Energetic Materials and Combustion
Type
article
Field-Weighted Citation Impact
0.00

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article

The Role of Electron–Phonon Interactions on Electronic Transitions of Molecular Energetic Crystals

AbdulJelili Popoola, Nilanjan Mitra
The Journal of Physical Chemistry Letters
Energetic Materials and Combustion
article

The Role of Electron–Phonon Interactions on Electronic Transitions of Molecular Energetic Crystals

AbdulJelili Popoola, Nilanjan Mitra
article en

Abstract

Abstract Despite recent progress in elucidating electronic and phononic contributions to phase transformations and bond scission in molecular energetic crystals, the role of electron–phonon coupling (EPC) remains elusive. Herein, we investigate electron–phonon interactions in β-HMX under hydrostatic pressure using first-principles density functional theory (DFT) based calculations. The EPC strength is found to vary with pressure, with dominant contributions arising from electrons scattering with optical phonons in the frequency range 667–1334 cm–1 near the Γ-point, primarily associated with N–NO2 bending vibrations. The incorporation of electron–phonon interactions leads to substantial bandgap renormalization up to −478 meV at 400 K and 10 GPa. Pressure further enhances electron lifetimes, suppressing electron–phonon scattering rates and enhancing electrical conductivity and the electronic contribution to thermal conductivity near the band edges. This study provides an alternative framework for providing atomistic insights into the mechanisms that influence the sensitivity of energetic crystals.

The Journal of Physical Chemistry Letters
Washington State University Vancouver (US), Washington State University (US)
Air Force Office of Scientific Research
Affordable and clean energy
Openalex Percentile: Top 19%
Energetic Materials and Combustion
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The Role of Electron–Phonon Interactions on Electronic Transitions of Molecular Energetic Crystals — AbdulJelili Popoola, Nilanjan Mitra · The Journal of Physical Chemistry Letters (2026) | TGRS Research Map | TGRS