Hybrid magnon-phonon localization enhances function near ferroic glassy states

Author:

Manley Michael E.1ORCID,Stonaha Paul J.1ORCID,Bruno Nickolaus M.23ORCID,Karaman Ibrahim2ORCID,Arroyave Raymundo2,Chi Songxue4ORCID,Abernathy Douglas L.4ORCID,Stone Matthew B.4ORCID,Chumlyakov Yuri I.5,Lynn Jeffrey W.6ORCID

Affiliation:

1. Materials Sciences and Technology Division, Oak Ridge National Lab, Oak Ridge, TN 37831, USA.

2. Department of Materials Science and Engineering, Texas A&M University, College Station, TX 77843, USA.

3. NASA Glenn Research Center, Cleveland, OH 44135, USA.

4. Neutron Scattering Division, Oak Ridge National Lab, Oak Ridge, TN 37831, USA.

5. Siberian Physical Technical Institute, Tomsk State University, Tomsk, Russia.

6. NIST Center for Neutron Research, National Institute of Standards and Technology, Gaithersburg, MD, 20899, USA.

Abstract

Ferroic materials on the verge of forming ferroic glasses exhibit heightened functionality that is often attributed to competing long- and short-range correlations. However, the physics underlying these enhancements is not well understood. The Ni 45 Co 5 Mn 36.6 In 13.4 Heusler alloy is on the edge of forming both spin and strain glasses and exhibits magnetic field–induced shape memory and large magnetocaloric effects, making it a candidate for multicaloric cooling applications. We show using neutron scattering that localized magnon-phonon hybrid modes, which are inherently spread across reciprocal space, act as a bridge between phonons and magnons and result in substantial magnetic field–induced shifts in the phonons, triple the caloric response, and alter phase stability. We attribute these modes to the localization of phonons and magnons by antiphase boundaries coupled to magnetic domains. Because the interplay between short- and long-range correlations is common near ferroic glassy states, our work provides general insights on how glassiness enhances function.

Publisher

American Association for the Advancement of Science (AAAS)

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