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Part A: Materials Science

A comment on Baker et al. ‘The time dependence of an atom-vacancy encounter due to the vacancy mechanism of diffusion’

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Pages 1238-1242 | Received 25 Nov 2016, Accepted 05 Feb 2017, Published online: 23 Feb 2017

References

  • H.C. Torrey, Nuclear spin relaxation by translational diffusion, Phys. Rev. 92 (1953), pp. 962–969.10.1103/PhysRev.92.962
  • G. Vogl and B. Sepiol, The elementary diffusion step in metals studied by the interference of gamma-rays, X-rays, and neutrons, in Diffusion in Condensed Matter: Methods, Materials, Models, P. Heitjans and J. Kärger, eds., Springer, Berlin, 2005, pp. 65–91.
  • T. Springer and R.E. Lechner, Diffusion studies of solids by quasielastic neutron scattering in diffusion, in Condensed Matter: Methods, Materials, Models, P. Heitjans and J. Kärger, eds., Springer, Berlin, 2005, pp. 63–164.
  • S. Dattagupta, Study of time-dependent hyperfine interactions by PAC, Mössbauer effect, μSR and NMR: A review of stochastic models, Hyperfine Interact 11 (1981), pp. 77–126.
  • J. Baker, C.J. Girard, and C.A. Sholl, The time dependence of an atom-vacancy encounter due to the vacancy mechanism of diffusion, Philos. Mag. A 74 (1996), pp. 543–552.10.1080/01418619608242161
  • C.A. Sholl, Atomic displacements due to the vacancy mechanism, Philos. Mag. A 65 (1992), pp. 749–756.10.1080/01418619208201547
  • Mathematica, version 10.0. Wolfram Research, Inc., Champaign, IL, 2014.
  • C.A. Sholl, Diffusion correlation factors and atomic displacements for the vacancy mechanism, J. Phys. C: Solid State Phys. 14 (1981), pp. 2723–2729.10.1088/0022-3719/14/20/011

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