Engineering the Coherent Phonon Transport in Polar Ferromagnetic Oxide Superlattices

In Hyeok Choi, Seung Gyo Jeong, Do Gyeom Jeong, Ambrose Seo, Woo Seok Choi, Jong Seok Lee

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

Artificial superlattices composed of perovskite oxides serves as an essential platform for engineering coherent phonon transport by redefining the lattice periodicity, which strongly influences the lattice-coupled phase transitions in charge and spin degrees of freedom. However, previous methods of manipulating phonons have been limited to controlling the periodicity of superlattice, rather than utilizing complex mutual interactions that are prominent in transition metal oxides. In this study on oxide superlattices composed of ferromagnetic metallic SrRuO3 and quantum paraelectric SrTiO3, phonon modulation by controlling the geometry of superlattice in atomic-scale precision is realized, demonstrating the coherent phonon engineering using structural and magnetic phase transitions. By modulating the interface density, coherent-incoherent crossover of the phonon transport at room temperature is observed, which is coupled with a change in interfacial structural continuity. Upon cooling, the close relation between phonon transport and multiple phase transitions is identified. In particular, the enhancement of the polar state in SrTiO3 layer at ≈200 K leads to the weakening of phonon coherence and a further reduction of thermal conductivity in superlattices compared to the bulk limit. These findings provide a guide to developing future thermoelectric nanodevices by engineering the coherence of phonons via the design of complex oxide heterostructures.

Original languageEnglish
Article number2407382
JournalAdvanced Science
Volume12
Issue number2
DOIs
StatePublished - Jan 13 2025

Bibliographical note

Publisher Copyright:
© 2024 The Author(s). Advanced Science published by Wiley-VCH GmbH.

Funding

This work was supported by the National Research Foundation of Korea (NRF) grant funded by the Korea government (MSIT) (No. 2022R1A2C2007847, 2021R1A2C2011340, RS\u20102023\u201000220471, RS\u20102023\u201000281671, 2022R1C1C2006723). A.S. acknowledges the support of the National Science Foundation Grant DMR\u20102104296 for Raman spectroscopic studies.

FundersFunder number
National Research Foundation of Korea
U.S. Department of Energy Chinese Academy of Sciences Guangzhou Municipal Science and Technology Project Oak Ridge National Laboratory Extreme Science and Engineering Discovery Environment National Science Foundation National Energy Research Scientific Computing Center National Natural Science Foundation of ChinaDMR‐2104296
U.S. Department of Energy Chinese Academy of Sciences Guangzhou Municipal Science and Technology Project Oak Ridge National Laboratory Extreme Science and Engineering Discovery Environment National Science Foundation National Energy Research Scientific Computing Center National Natural Science Foundation of China
MSITRS‐2023‐00220471, 2021R1A2C2011340, 2022R1A2C2007847, 2022R1C1C2006723, RS‐2023‐00281671

    Keywords

    • SrRuO
    • SrTiO
    • coherent phonon transport
    • polar phase transition
    • superlattice

    ASJC Scopus subject areas

    • Medicine (miscellaneous)
    • General Chemical Engineering
    • General Materials Science
    • Biochemistry, Genetics and Molecular Biology (miscellaneous)
    • General Engineering
    • General Physics and Astronomy

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