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功能氧化物异质结构中声子的原子尺度工程

Atomistic Engineering of Phonons in Functional Oxide Heterostructures.

作者信息

Jeong Seung Gyo, Seo Ambrose, Choi Woo Seok

机构信息

Department of Physics, Sungkyunkwan University, Suwon, 16419, Korea.

Department of Physics and Astronomy, University of Kentucky, Lexington, KY, 40506, USA.

出版信息

Adv Sci (Weinh). 2022 Mar;9(7):e2103403. doi: 10.1002/advs.202103403. Epub 2022 Jan 17.

Abstract

Engineering of phonons, that is, collective lattice vibrations in crystals, is essential for manipulating physical properties of materials such as thermal transport, electron-phonon interaction, confinement of lattice vibration, and optical polarization. Most approaches to phonon-engineering have been largely limited to the high-quality heterostructures of III-V compound semiconductors. Yet, artificial engineering of phonons in a variety of materials with functional properties, such as complex oxides, will yield unprecedented applications of coherent tunable phonons in future quantum acoustic devices. In this study, artificial engineering of phonons in the atomic-scale SrRuO /SrTiO superlattices is demonstrated, wherein tunable phonon modes are observed via confocal Raman spectroscopy. In particular, the coherent superlattices led to the backfolding of acoustic phonon dispersion, resulting in zone-folded acoustic phonons in the THz frequency domain. The frequencies can be largely tuned from 1 to 2 THz via atomic-scale precision thickness control. In addition, a polar optical phonon originating from the local inversion symmetry breaking in the artificial oxide superlattices is observed, exhibiting emergent functionality. The approach of atomic-scale heterostructuring of complex oxides will vastly expand material systems for quantum acoustic devices, especially with the viability of functionality integration.

摘要

声子工程,即晶体中的集体晶格振动,对于操控材料的物理性质至关重要,这些性质包括热输运、电子 - 声子相互作用、晶格振动的限制以及光学极化。大多数声子工程方法在很大程度上限于III - V族化合物半导体的高质量异质结构。然而,在具有功能特性的各种材料(如复杂氧化物)中进行声子的人工工程,将在未来量子声学器件中产生前所未有的相干可调谐声子应用。在本研究中,展示了在原子尺度的SrRuO₃/SrTiO₃超晶格中的声子人工工程,其中通过共焦拉曼光谱观察到了可调谐声子模式。特别地,相干超晶格导致了声学声子色散的折返,在太赫兹频域中产生了区域折叠声学声子。通过原子尺度的精确厚度控制,频率可在很大范围内从1太赫兹调谐到2太赫兹。此外,观察到了源自人工氧化物超晶格中局部反演对称性破缺的极性光学声子,展现出新兴功能。复杂氧化物的原子尺度异质结构方法将极大地扩展量子声学器件的材料体系,特别是在功能集成的可行性方面。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0edb/8895146/1364fa85d1f6/ADVS-9-2103403-g004.jpg

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