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首页> 外文期刊>Bulletin of the American Physical Society >APS -APS March Meeting 2017 - Event - Imaging the Dynamics of the Ferroelectric Stripe Phase Near a Field-Driven Phase Transition in Bismuth Ferrite
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APS -APS March Meeting 2017 - Event - Imaging the Dynamics of the Ferroelectric Stripe Phase Near a Field-Driven Phase Transition in Bismuth Ferrite

机译:APS -APS 2017年3月会议-活动-铋铁氧体场驱动相变附近铁电条纹相动力学的成像

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Electric field-driven phase transitions in multiferroic systems such as Bismuth Ferrite could potentially host interesting domain dynamics due to the coexistence of multiple order parameters. Structural imaging of these dynamics under a host of elastic and electric boundary conditions is therefore of interest. Here, we present X-ray diffraction microscopy (XDM) studies of the domain wall dynamics in a bismuth ferrite thin-film near the field-driven transition from rhombohedral to monoclinic (R to M). XDM is a novel full-field imaging technique that uses Bragg diffraction contrast to image structural configurations with sub-100nm lateral resolutions and fast acquisition times (milliseconds to seconds per image). We find that under electric fields extasciitilde 100 kV/cm, a bismuth ferrite thin-film (100 nm BiFeO3/DyScO3 (110)) undergoes a structural phase transition but that this new phase (M) is pinned by the preexisting ferroelectric/ferroelastic stripe phase (R). At higher fields (extasciitilde 300 kV/cm), we observe unusually slow domain wall dynamics in the stripe phase, consisting of periodicity doubling, domain wall roughening and crowding. These observed ferroelastic domain wall spatial dynamics are weakly constrained by the crystal symmetry of the orthorhombic substrate but exhibit nonlinear dynamics more commonly associated with disordered nematic systems.
机译:由于多阶参数的共存,在诸如铋铁氧体的多铁性体系中,电场驱动的相变可能具有有趣的畴动力学特性。因此,在许多弹性和电边界条件下对这些动力学进行结构成像非常重要。在这里,我们介绍了在从菱形到单斜晶系(R到M)的场驱动转变附近的铋铁氧体薄膜中的畴壁动力学的X射线衍射显微镜(XDM)研究。 XDM是一种新颖的全场成像技术,该技术使用布拉格衍射对比技术以低于100nm的横向分辨率和快速的采集时间(每张图像毫秒到秒)来构造图像结构。我们发现在100 kV / cm的电场下,铋铁氧体薄膜(100 nm BiFeO3 / DyScO3(110))发生结构相变,但该新相(M)被预先存在的铁电/铁弹性条钉扎相(R)。在较高的电场(Exciciciilde 300 kV / cm)下,我们在条纹阶段观察到异常缓慢的畴壁动力学,包括周期性加倍,畴壁粗糙和拥挤。这些观察到的铁弹性畴壁空间动力学受到正交晶衬底的晶体对称性的弱约束,但表现出更常与无序向列系统相关的非线性动力学。

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