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Mike W. Finnis

Publications and source records attributed to Mike W. Finnis.

2 recordsLinked to original sources

Oxygen vacancy formation energies in Sr-doped complex perovskites: ab initio thermodynamic study

La1-xSrxCo0.25Fe0.75O3-delta is known as one of the best cathode materials for permeation membranes and solid oxide fuel cells. Optimization of its chemical composition is a challenging problem. One of the key properties is concentration of oxygen vacancies, controlled by their formation energies. Ab initio calculations were employed in order to study the formation of oxygen vacancies in La1-xSrxCo0.25Fe0.75O3-delta perovskites by varying the Sr content from x = 12.5% to 50%. The formation energies were obtained for different stoichiometries as functions of temperature and oxygen partial pressure. We have shown that the phonon contribution to the free formation energy becomes increasingly important in La1-xSrxCo0.25Fe0.75O3-delta not only with rising temperature but also with rising Sr content. We have shown that the formation energies are decreased significantly with increasing Sr content due to two effects: charge compensation of Sr2+ ions and phonon contribution. We have suggested a simple explanation to increasing role of phonons for the oxygen vacancies formation energies on the basis of phonon mode changes in comparison to defect-free materials. A careful analysis of the experimental results from the literature is also presented.

cond-mat.mtrl-sci

Solid-liquid interface free energy through metadynamics simulations

The solid-liquid interface free energy γsl is a key parameter controlling nucleation and growth during solidification and other phenomena. There are intrinsic difficulties in obtaining accurate experimental values, and the previous approaches to compute γsl with atomistic simulations are computationally demanding. We propose a new approach, which is to obtain γsl from a free energy map of the phase transition reconstructed by metadynamics. We apply this to the benchmark case of a Lennard-Jones potential and the results confirm the most reliable data obtained previously. We demonstrate several advantages of our new approach: it is simple to implement, robust and free of hysteresis problems, it allows a rigorous and unbiased estimate of the statistical uncertainty and it returns a good estimate of of the thermodynamic limit with system sizes of a just a few hundred atoms. It is therefore attractive for using with more realistic and specific models of interatomic forces.

cond-mat.mtrl-sci