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Positron annihilation on pure and carbon-doped<mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"><mml:mi>α</mml:mi></mml:math>-iron in thermal equilibrium
155
Citations
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References
1983
Year
MagnetismMath XmlnsPositron AnnihilationEngineeringHigh-energy Nuclear ReactionPhysicsPositron Annihilation SpectroscopyNatural SciencesParticle PhysicsApplied PhysicsCondensed Matter PhysicsQuantum MaterialsSelf-diffusion Enthalpy ValuesThermal EquilibriumChemistryActivation EnthalpyChemical Kinetics
Positron-annihilation $S$-parameter measurements in thermal equilibrium on pure and carbon-doped (50 and 750 at. ppm) $\ensuremath{\alpha}$-iron are presented. It is shown that trapping of positrons in both monovacancies and carbon-vacancy pairs occurs, even far above the dissociation temperature of the vacancy pairs. Therefore, a three-state trapping model is used in the analysis of the measured $S$ curves. The vacancy-formation enthalpy in both the paramagnetic and ferromagnetic state is deduced: It is found to be 1.79 \ifmmode\pm\else\textpm\fi{} 0.10 eV in the paramagnetic state and 2.0 \ifmmode\pm\else\textpm\fi{} 0.2 eV in the ferromagnetic state. These values are larger than those published so far. The activation enthalpy for vacancy migration obtained by combining the values cited above with recently published self-diffusion enthalpy values confirms the applicability of the one-interstitial model in $\ensuremath{\alpha}$-iron.
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