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多铁性材料LiCuVO₄中畴动力学所揭示的极化纳米区域的证据

Evidence for polarized nanoregions from the domain dynamics in multiferroic LiCuVO.

作者信息

Grams Christoph P, Kopatz Severin, Brüning Daniel, Biesenkamp Sebastian, Becker Petra, Bohatý Ladislav, Lorenz Thomas, Hemberger Joachim

机构信息

University of Cologne, Institute of Physics II, Zülpicher Str. 77, 50937, Cologne, Germany.

University of Cologne, Institute of Geology and Mineralogy, Section Crystallography, Zülpicher Str. 49b, 50674, Cologne, Germany.

出版信息

Sci Rep. 2019 Mar 13;9(1):4391. doi: 10.1038/s41598-019-40839-5.

Abstract

LiCuVO is a model system of a 1D spin-1/2 chain that enters a planar spin-spiral ground state below its Néel temperature of 2.4 K due to competing nearest and next nearest neighbor interactions. The spin-spiral state is multiferroic with an electric polarization along the a axis which has been proposed to be caused purely by the spin supercurrent mechanism. With external magnetic fields in c direction T can be suppressed down to 0 K at 7.4 T. Here we report dynamical measurements of the polarization from P(E)-hysteresis loops, magnetic field dependent pyro-current and non-linear dielectric spectroscopy as well as thermal expansion and magnetostriction measurements at very low temperatures. The multiferroic transition is accompanied by strong anomalies in the thermal expansion and magnetostriction coefficients and we find slow switching times of electric domain reversal. Both observations suggest a sizable magnetoelastic coupling in LiCuVO. By analyzing the non-linear polarization dynamics we derive domain sizes in the nm range that are probably caused by Li defects.

摘要

LiCuVO是一维自旋1/2链的一个模型体系,由于最近邻和次近邻相互作用的竞争,它在2.4K的奈尔温度以下进入平面自旋螺旋基态。自旋螺旋态是多铁性的,沿a轴具有电极化,有人提出这纯粹是由自旋超流机制引起的。在c方向施加外部磁场时,在7.4T的磁场下T可以被抑制到0K。在此,我们报告了在非常低的温度下,通过P(E) - 滞后回线、磁场依赖的热电流和非线性介电谱以及热膨胀和磁致伸缩测量对极化进行的动态测量。多铁性转变伴随着热膨胀和磁致伸缩系数的强烈异常,并且我们发现电畴反转的切换时间很慢。这两个观察结果都表明LiCuVO中存在相当大的磁弹耦合。通过分析非线性极化动力学,我们得出了可能由锂缺陷引起的纳米级畴尺寸。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6ea7/6416292/ab656e881d83/41598_2019_40839_Fig1_HTML.jpg

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