Published October 27, 2014 | Version v1
Journal article

Enhanced densification under shock compression in porous silicon

  • 1. Sandia National Lab. (SNL-NM), Albuquerque, NM (United States)
  • 2. Sandia National Lab. (SNL-CA), Livermore, CA (United States)

Description

Under shock compression, most porous materials exhibit lower densities for a given pressure than that of a full-dense sample of the same material. However, some porous materials exhibit an anomalous, or enhanced, densification under shock compression. The mechanism driving this behavior was not completely determined. We present evidence from atomistic simulation that pure silicon belongs to this anomalous class of materials and demonstrate the associated mechanisms responsible for the effect in porous silicon. Atomistic response indicates that local shear strain in the neighborhood of collapsing pores catalyzes a local solid-solid phase transformation even when bulk pressures are below the thermodynamic phase transformation pressure. This metastable, local, and partial, solid-solid phase transformation, which accounts for the enhanced densification in silicon, is driven by the local stress state near the void, not equilibrium thermodynamics. This mechanism may also explain the phenomenon in other covalently bonded materials

Availability note (English)

Available from: DOI:10.1103/PhysRevB.90.134311; DOE Accepted Manuscript full text, or the publishers Best Available Version will be available free of charge after the embargo period from OSTI using http://www.osti.gov/pages/biblio/1182965

Additional details

Publishing Information

Journal Title
Physical Review. B, Condensed Matter and Materials Physics
Journal Volume
90
Journal Issue
13
Journal Page Range
vp.
ISSN
1098-0121
CODEN
PRBMDO

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
47069271
Subject category
S74: ATOMIC AND MOLECULAR PHYSICS;
Descriptors DEI
PHASE TRANSFORMATIONS; POROUS MATERIALS; SILICON; SIMULATION; SOLIDS; THERMODYNAMICS
Descriptors DEC
ELEMENTS; MATERIALS; SEMIMETALS

Optional Information