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May 6, 2026Journal of Applied Physics1 citationsOpen Access

Microstructural evolution of PETN thin films during thermal aging

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APAndrew M. PhamJMJoseph M. MontiRDRémi Dingreville

Key Points

  • This research investigates how thermal aging affects the microstructure of PETN thin films.
  • Utilized phase-field simulations to analyze microstructural evolution.
  • Generated initial microstructures via physical vapor deposition followed by thermal aging at two temperatures.
  • Examined mechanisms including void elongation, grain coarsening, and preferential grain growth.
  • Identified three primary mechanisms: void elongation along grain boundaries, grain coarsening, and preferential growth of (110) oriented grains.
  • Demonstrated that higher porosity levels reduce grain coarsening rates.
  • Found that porosity acts as a drag on grain boundary migration.

Abstract

Maintaining the microstructure of energetic materials under specific margins is critical to ensure safety and performance. We investigate microstructural evolution of pentaerythritol tetranitrate thin films during thermal aging using phase-field simulations that integrate physical vapor deposition, grain coarsening, porosity evolution, and anisotropic mechanical response. We generate thin films with initial microstructures via physical vapor deposition simulations, followed by aging at two different temperatures. Our results demonstrate three primary stress-driven mechanisms: (1) void elongation along grain boundaries; (2) grain coarsening; and (3) preferential growth of grains with (110) orientations. Additionally, we find that porosity acts as a drag on grain boundary migration, with higher porosity levels reducing grain coarsening rates. These findings reveal the critical role of stresses and elastic anisotropy in controlling long-term microstructural stability of energetic thin films.

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Cite This Study

Pham et al. (2026) studied this question.

synapsesocial.com/papers/69fadad703f892aec9b1e913https://doi.org/10.1063/5.0317817
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