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成分梯度铁电薄膜中高度迁移的铁弹畴壁。

Highly mobile ferroelastic domain walls in compositionally graded ferroelectric thin films.

机构信息

Department of Materials Science and Engineering, University of California, Berkeley, California 94720, USA.

Department of Materials Science and Engineering, University of Illinois, Urbana-Champaign, Urbana, Illinois 61801, USA.

出版信息

Nat Mater. 2016 May;15(5):549-56. doi: 10.1038/nmat4567. Epub 2016 Feb 15.

Abstract

Domains and domain walls are critical in determining the response of ferroelectrics, and the ability to controllably create, annihilate, or move domains is essential to enable a range of next-generation devices. Whereas electric-field control has been demonstrated for ferroelectric 180° domain walls, similar control of ferroelastic domains has not been achieved. Here, using controlled composition and strain gradients, we demonstrate deterministic control of ferroelastic domains that are rendered highly mobile in a controlled and reversible manner. Through a combination of thin-film growth, transmission-electron-microscopy-based nanobeam diffraction and nanoscale band-excitation switching spectroscopy, we show that strain gradients in compositionally graded PbZr1-xTixO3 heterostructures stabilize needle-like ferroelastic domains that terminate inside the film. These needle-like domains are highly labile in the out-of-plane direction under applied electric fields, producing a locally enhanced piezoresponse. This work demonstrates the efficacy of novel modes of epitaxy in providing new modalities of domain engineering and potential for as-yet-unrealized nanoscale functional devices.

摘要

畴和畴壁在决定铁电体的响应方面至关重要,而能够可控地创建、消除或移动畴则是实现一系列下一代器件的关键。尽管已经证明了电场控制对铁电体 180°畴壁的有效性,但类似的铁弹性畴的控制尚未实现。在这里,我们使用受控的成分和应变梯度,以可控和可逆的方式证明了对铁弹性畴的确定性控制,使它们变得高度可动。通过薄膜生长、基于透射电子显微镜的纳米束衍射和纳米级能带激发切换光谱学的组合,我们表明在成分渐变 PbZr1-xTixO3 异质结构中的应变梯度稳定了针状铁弹性畴,这些畴在薄膜内部终止。在施加的电场下,这些针状畴在面外方向上非常不稳定,产生局部增强的压电阻抗。这项工作证明了新型外延模式在提供新的畴工程模式和潜在的尚未实现的纳米级功能器件方面的有效性。

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