Emergent interface vibrational structure of oxide superlattices

被引:0
作者
Eric R. Hoglund
De-Liang Bao
Andrew O’Hara
Sara Makarem
Zachary T. Piontkowski
Joseph R. Matson
Ajay K. Yadav
Ryan C. Haislmaier
Roman Engel-Herbert
Jon F. Ihlefeld
Jayakanth Ravichandran
Ramamoorthy Ramesh
Joshua D. Caldwell
Thomas E. Beechem
John A. Tomko
Jordan A. Hachtel
Sokrates T. Pantelides
Patrick E. Hopkins
James M. Howe
机构
[1] University of Virginia,Department of Materials Science and Engineering
[2] Vanderbilt University,Department of Physics and Astronomy
[3] Sandia National Laboratories,Department of Mechanical Engineering and Electrical Engineering
[4] Vanderbilt University,Department of Materials Science and Engineering
[5] University of California Berkley,Department of Materials Science and Engineering
[6] Pennsylvania State University,Department of Chemical Engineering and Materials Science
[7] Paul-Drude-Institut für Festkörperelektronik,Center for Integrated Nanotechnologies
[8] Institut für Physik,School of Mechanical Engineering and the Birck Nanotechnology Center
[9] Humboldt-Universität zu Berlin,Department of Mechanical and Aerospace Engineering
[10] University of Southern California,Department of Electrical and Computer Engineering
[11] Sandia National Laboratories,Department of Physics
[12] Purdue University,undefined
[13] University of Virginia,undefined
[14] Center for Nanophase Materials Sciences,undefined
[15] Oak Ridge National Laboratory,undefined
[16] Vanderbilt University,undefined
[17] University of Virginia,undefined
来源
Nature | 2022年 / 601卷
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摘要
As the length scales of materials decrease, the heterogeneities associated with interfaces become almost as important as the surrounding materials. This has led to extensive studies of emergent electronic and magnetic interface properties in superlattices1–9. However, the interfacial vibrations that affect the phonon-mediated properties, such as thermal conductivity10,11, are measured using macroscopic techniques that lack spatial resolution. Although it is accepted that intrinsic phonons change near boundaries12,13, the physical mechanisms and length scales through which interfacial effects influence materials remain unclear. Here we demonstrate the localized vibrational response of interfaces in strontium titanate–calcium titanate superlattices by combining advanced scanning transmission electron microscopy imaging and spectroscopy, density functional theory calculations and ultrafast optical spectroscopy. Structurally diffuse interfaces that bridge the bounding materials are observed and this local structure creates phonon modes that determine the global response of the superlattice once the spacing of the interfaces approaches the phonon spatial extent. Our results provide direct visualization of the progression of the local atomic structure and interface vibrations as they come to determine the vibrational response of an entire superlattice. Direct observation of such local atomic and vibrational phenomena demonstrates that their spatial extent needs to be quantified to understand macroscopic behaviour. Tailoring interfaces, and knowing their local vibrational response, provides a means of pursuing designer solids with emergent infrared and thermal responses.
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页码:556 / 561
页数:5
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