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Structure mechanical properties, and dynamic fracture in nanophase silicon nitride via parallel molecular dynamics

  • Kenji Tsuruta
  • , Andrey Omeltchenko
  • , Aiichiro Nakano
  • , Rajiv K. Kalia
  • , Priya Vashishta

Research output: Chapter in Book/Report/Conference proceedingConference contribution

Abstract

Million-atom molecular-dynamics (MD) simulations are performed to study the structure, mechanical properties, and dynamic fracture in nanophase Si3N4. We find that intercluster regions are highly disordered: 50% of Si atoms in intercluster regions are three-fold coordinated. Elastic moduli of nanophase Si3N4 as a function of grain size and porosity are well described by a multiphase model for heterogeneous materials. The study of fracture in the nanophase Si3N4 reveals that the system can sustain an order-of-magnitude larger external load than crystalline Si3N4. This is due to branching and pinning of the crack front by nanoscale microstructures.
Original languageEnglish
Title of host publicationMaterials Research Society Symposium - Proceedings
Pages205-210
Number of pages6
Volume457
StatePublished - Jan 1 1997
Externally publishedYes

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