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Primary radiation damage: A review of current understanding and models

Journal of Nuclear Materials · 2018 · Vol. 512 · pp. 450–479
K. NordlundS.J. ZinkleAndrea E. SandFredric GranbergR. S. AverbackR.E. StollerTomoaki SuzudoL. MalerbaFlorian BanhartWilliam J. WeberF. WillaimeS. L. DudarevDavid Siméone

Abstract

Scientific understanding of any kind of radiation effects starts from the primary damage, i.e. the defects that are produced right after an initial atomic displacement event initiated by a high-energy particle. In this Review, we consider the extensive experimental and computer simulation studies that have been performed over the past several decades on what the nature of the primary damage is. We review both the production of crystallographic or topological defects in materials as well as radiation mixing, i.e. the process where atoms in perfect crystallographic positions exchange positions with other ones in non-defective positions. All classes of materials except biological materials are considered. We also consider the recent effort to provide alternatives to the current international standard for quantifying this energetic particle damage, the Norgett-Robinson-Torrens displacements per atom (NRT-dpa) model for metals. We present in detail new complementary displacement production estimators (“athermal recombination corrected dpa”, arc-dpa) and atomic mixing (“replacements per atom”, rpa) functions that extend the NRT-dpa, and discuss their advantages and limitations.

Nuclear Materials and PropertiesNuclear materials and radiation effectsHigh-pressure geophysics and materialsRadiation damageAtom (system on chip)Particle (ecology)Mixing (physics)Displacement (psychology)RadiationMaterials scienceEvent (particle physics)Atomic physicsCurrent (fluid)

Funding

  • U.S. Department of Energy
  • EUROfusion
  • Research Councils UK
  • European Commission
  • China Scholarship Council
  • Euratom Research and Training Programme
  • Basic Energy Sciences
  • Fusion Energy Sciences
Citations
607
FWCI
19.04
field-weighted impact
References
413
Percentile
100%
vs. same field & year
Citations per year
References
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