Thermodynamics of vacancies in concentrated solid solutions: From dilute Ni-alloys to the Cantor system
Abstract
The vacancy concentration at finite temperatures is studied for a series of (CoCrFeMn)1-xNiNixNi alloys by grand-canonical Monte-Carlo (MC) simulations. The vacancy formation energies are calculated from a classical interatomic potential and exhibit a distribution due to the different chemical environments of the vacated sites. In dilute alloys, this distribution features multiple discrete peaks, while concentrated alloys exhibit an unimodal distribution as there are many different chemical environments of similar vacancy formation energy. MC simulations using a numerically efficient bond-counting model confirm that the vacancy concentration even in concentrated alloys may be calculated by the established Maxwell-Boltzmann equation weighted by the given distribution of formation energies. We calculate the variation of vacancy concentration as function of Ni content in the (CoCrFeMn)xNiNi1-xNi and prove the excellent agreement of the thermodynamic model and the results from the grand-canonical Monte-Carlo simulations.
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