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NASA NTRS · 20050205649

Energetics of Single Substitutional Impurities in NiTi

Abstract

Shape-memory alloys are of considerable current interest, with applications ranging from stents to Mars rover components. In this work, we present results on the energetics of single substitutional impurities in B2 NiTi. Specifically, energies of Pd, Pt, Zr and Hf impurities at both Ni and Ti sites are computed. All energies are computed using the CASTEP ab initio code, and, for comparison, using the quantum approximate energy method of Bozzolo, Ferrante and Smith. Atomistic relaxation in the vicinity of the impurities is investigated via quantum approximate Monte Carlo simulation, and in cases where the relaxation is found to be important, the resulting relaxations are applied to the ab initio calculations. We compare our results with available experimental work.

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Brian S Good, Ronald Noebe. 2004-03-22. Energetics of Single Substitutional Impurities in NiTi. https://ntrs.nasa.gov/citations/20050205649

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Properties and Potential of Two (Ni,Pt)Ti Alloys for Use as High-Temperature Actuator Materials

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