Electronic Origins of Anomalous Twin Boundary Energies in Hexagonal Close Packed Transition Metals
Maarten de Jong1, J Kacher1,2, M H F Sluiter3
1Department of Materials Science and Engineering, University of California, Berkeley, California 94720, USA.
Abstract:
Density-functional-theory calculations of twin-boundary energies in hexagonal close packed metals reveal anomalously low values for elemental Tc and Re, which can be lowered further by alloying with solutes that reduce the electron per atom ratio. The anomalous behavior is linked to atomic geometries in the interface similar to those observed in bulk tetrahedrally close packed phases. The results establish a link between twin-boundary energetics and the theory of bulk structural stability in transition metals that may prove useful in controlling mechanical behavior in alloy design.
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