Visualization of ferroaxial domains in an order-disorder type ferroaxial crystal.

IF 3.784 3区 化学 Q1 Chemistry ACS Combinatorial Science Pub Date : 2020-09-11 DOI:10.1038/s41467-020-18408-6
T Hayashida, Y Uemura, K Kimura, S Matsuoka, D Morikawa, S Hirose, K Tsuda, T Hasegawa, T Kimura
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引用次数: 32

Abstract

Ferroaxial materials that exhibit spontaneous ordering of a rotational structural distortion with an axial vector symmetry have gained growing interest, motivated by recent extensive studies on ferroic materials. As in conventional ferroics (e.g., ferroelectrics and ferromagnetics), domain states will be present in the ferroaxial materials. However, the observation of ferroaxial domains is non-trivial due to the nature of the order parameter, which is invariant under both time-reversal and space-inversion operations. Here we propose that NiTiO3 is an order-disorder type ferroaxial material, and spatially resolve its ferroaxial domains by using linear electrogyration effect: optical rotation in proportion to an applied electric field. To detect small signals of electrogyration (order of 10-5 deg V-1), we adopt a recently developed difference image-sensing technique. Furthermore, the ferroaxial domains are confirmed on nano-scale spatial resolution with a combined use of scanning transmission electron microscopy and convergent-beam electron diffraction. Our success of the domain visualization will promote the study of ferroaxial materials as a new ferroic state of matter.

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有序无序型铁轴晶体中铁轴畴的可视化。
近年来对铁质材料的广泛研究促使人们对具有轴向对称的旋转结构畸变自发有序的铁质材料越来越感兴趣。与传统的铁性材料(如铁电体和铁磁性材料)一样,畴态将存在于铁轴材料中。然而,铁轴域的观测是非平凡的,这是由于序参数的性质,它在时间反转和空间反转操作下都是不变的。本文提出NiTiO3是一种有序无序型铁轴材料,并利用线性电旋效应(光旋与外加电场成正比)对其铁轴畴进行空间解析。为了检测电旋转的小信号(10-5度V-1),我们采用了最近开发的差分图像传感技术。此外,结合扫描透射电子显微镜和会聚束电子衍射,在纳米尺度的空间分辨率上证实了铁轴畴。我们的领域可视化的成功将促进铁轴材料作为一种新的铁态物质的研究。
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ACS Combinatorial Science
ACS Combinatorial Science CHEMISTRY, APPLIED-CHEMISTRY, MEDICINAL
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1 months
期刊介绍: The Journal of Combinatorial Chemistry has been relaunched as ACS Combinatorial Science under the leadership of new Editor-in-Chief M.G. Finn of The Scripps Research Institute. The journal features an expanded scope and will build upon the legacy of the Journal of Combinatorial Chemistry, a highly cited leader in the field.
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