| Literature DB >> 24317186 |
Jayakanth Ravichandran1, Ajay K Yadav2, Ramez Cheaito3, Pim B Rossen4, Arsen Soukiassian5, S J Suresha6, John C Duda7, Brian M Foley7, Che-Hui Lee5, Ye Zhu8, Arthur W Lichtenberger9, Joel E Moore10, David A Muller11, Darrell G Schlom12, Patrick E Hopkins7, Arun Majumdar13, Ramamoorthy Ramesh14, Mark A Zurbuchen15.
Abstract
Elementary particles such as electrons or photons are frequent subjects of wave-nature-driven investigations, unlike collective excitations such as phonons. The demonstration of wave-particle crossover, in terms of macroscopic properties, is crucial to the understanding and application of the wave behaviour of matter. We present an unambiguous demonstration of the theoretically predicted crossover from diffuse (particle-like) to specular (wave-like) phonon scattering in epitaxial oxide superlattices, manifested by a minimum in lattice thermal conductivity as a function of interface density. We do so by synthesizing superlattices of electrically insulating perovskite oxides and systematically varying the interface density, with unit-cell precision, using two different epitaxial-growth techniques. These observations open up opportunities for studies on the wave nature of phonons, particularly phonon interference effects, using oxide superlattices as model systems, with extensive applications in thermoelectrics and thermal management.Entities:
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Year: 2013 PMID: 24317186 DOI: 10.1038/nmat3826
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841