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隐藏的晶格不稳定性是绝缘 LaAlO3 和 SrTiO3 之间导电界面的起源。

Hidden lattice instabilities as origin of the conductive interface between insulating LaAlO3 and SrTiO3.

机构信息

Department of Physics, National Taiwan University, Taipei 106, Taiwan.

Center for Condensed Matter Sciences, National Taiwan University, Taipei 106, Taiwan.

出版信息

Nat Commun. 2016 Sep 14;7:12773. doi: 10.1038/ncomms12773.

Abstract

The metallic interface between insulating LaAlO3 and SrTiO3 opens up the field of oxide electronics. With more than a decade of researches on this heterostructure, the origin of the interfacial conductivity, however, remains unsettled. Here we resolve this long-standing puzzle by atomic-scale observation of electron-gas formation for screening hidden lattice instabilities, rejuvenated near the interface by epitaxial strain. Using atomic-resolution imaging and electron spectroscopy, the generally accepted notions of polar catastrophe and cation intermixing for the metallic interface are discounted. Instead, the conductivity onset at the critical thickness of 4-unit cell LaAlO3 on SrTiO3 substrate is accompanied with head-to-head ferroelectric-like polarizations across the interface due to strain-rejuvenated ferroelectric-like instabilities in the materials. The divergent depolarization fields of the head-to-head polarizations cast the interface into an electron reservoir, forming screening electron gas in SrTiO3 with LaAlO3 hosting complementary localized holes. The ferroelectric-like polarizations and electron-hole juxtaposition reveal the cooperative nature of metallic LaAlO3/SrTiO3.

摘要

绝缘的 LaAlO3 和 SrTiO3 之间的金属界面为氧化物电子学开辟了道路。经过十多年对这种异质结构的研究,界面电导率的起源仍然没有定论。在这里,我们通过原子尺度观察电子气的形成来解决这个长期存在的难题,电子气的形成可以屏蔽隐藏的晶格不稳定性,这种不稳定性是由外延应变在界面附近重新激活的。通过原子分辨率成像和电子能谱,我们否定了普遍认为的极性崩溃和金属界面阳离子混合的观点。相反,在 SrTiO3 衬底上 LaAlO3 的临界厚度为 4 个单胞时,导电性的出现伴随着界面处的铁电极化,这是由于材料中应变重新激活的铁电极化不稳定性造成的。头对头极化的发散去极化场使界面成为电子库,在 SrTiO3 中形成屏蔽电子气,而 LaAlO3 则容纳互补的局域空穴。铁电极化和电子-空穴并置揭示了金属 LaAlO3/SrTiO3 的协同性质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/25d3/5027288/7ec86e17c3ea/ncomms12773-f1.jpg

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