Glassy Phonon Heralds a Strain Glass State in a Shape Memory Alloy
Author(s) -
Paul Stonaha,
İbrahim Karaman,
Raymundo Arróyave,
D. Salas,
Nickolaus M. Bruno,
Yuhao Wang,
Matthew F. Chisholm,
Songxue Chi,
D. L. Abernathy,
Y.I. Chumlyakov,
Michael E. Manley
Publication year - 2018
Publication title -
physical review letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.688
H-Index - 673
eISSN - 1079-7114
pISSN - 0031-9007
DOI - 10.1103/physrevlett.120.245701
Subject(s) - phonon , materials science , strain (injury) , alloy , condensed matter physics , shape memory alloy , state (computer science) , composite material , physics , computer science , medicine , algorithm
Shape memory strain glasses are frustrated ferroelastic materials with glasslike slow relaxation and nanodomains. It is possible to change a NiCoMnIn Heusler alloy from a martensitically transforming alloy to a nontransforming strain glass by annealing, but minimal differences are evident in the short- or long-range order above the transition temperature-although there is a structural relaxation and a 0.18% lattice expansion in the annealed sample. Using neutron scattering we find glasslike phonon damping in the strain glass but not the transforming alloy at temperatures well above the transition. Damping occurs in the mode with displacements matching the martensitic transformation. With support from first-principles calculations, we argue that the strain glass originates not with transformation strain pinning but with a disruption of the underlying electronic instability when disorder resonance states cross the Fermi level.
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