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首页> 外文期刊>Physical review. B, Condensed Matter And Materals Physics >Relaxation dynamics of modulated magnetic phases in the skyrmion host GaV_4S_8: An ac magnetic susceptibility study
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Relaxation dynamics of modulated magnetic phases in the skyrmion host GaV_4S_8: An ac magnetic susceptibility study

机译:天蝎座宿主GaV_4S_8中调制磁相的弛豫动力学:交流磁化率研究

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摘要

We report on the slow magnetization dynamics observed upon the magnetic phase transitions of GaV_4S_8, a multiferroic compound featuring a long-ranged cycloidal magnetic order and a Neel-type skyrmion lattice in a relatively broad temperature range below its Curie temperature. The fundamental difference between GaV_4S_8 and the chiral helimagnets, the prototypical skyrmion host compounds, lies within the polar symmetry of GaV_4S_8, promoting a cycloidal instead of a helical magnetic order and rendering the magnetic phase diagram essentially different from that in the cubic helimagnets. Our ac magnetic susceptibility study reveals slow relaxation dynamics at the field-driven phase transitions between the cycloidal, skyrmion lattice and field-polarized states. At each phase boundary, the characteristic relaxation times were found to exhibit a strong temperature dependence, starting from the minute range at low temperatures, decreasing to the micro- to millisecond range at higher temperatures.
机译:我们报告了在GaV_4S_8的磁性相变时观察到的慢磁化动力学,GaV_4S_8是一种多铁性化合物,其特征是在其居里温度以下的相对较宽的温度范围内具有长距离的摆线磁阶和Neel型Skyrmion晶格。 GaV_4S_8与手性Helimagnets(典型的Skyrmion主体化合物)之间的根本区别在于GaV_4S_8的极性对称内,促进了摆线而不是螺旋磁顺,并使磁相图与立方六面体实质上不同。我们的交流磁化率研究表明,在摆线,天旋子晶格和场极化态之间的场驱动相变中,弛豫动力学很慢。在每个相界处,发现特征弛豫时间表现出很强的温度依赖性,从低温下的微小范围开始,到高温下减小到微秒至毫秒范围。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2017年第10期|104430.1-104430.10|共10页
  • 作者单位

    MTA-BME Lendület Magneto-optical Spectroscopy Research Group, 1111 Budapest, Hungary,Department of Physics, Budapest University of Technology and Economics 1111 Budapest, Hungary;

    MTA-BME Lendület Magneto-optical Spectroscopy Research Group, 1111 Budapest, Hungary,Department of Physics, Budapest University of Technology and Economics 1111 Budapest, Hungary;

    Department of Experimental Solid State Physics, Institute for Solid State Physics and Optics, Wigner-MTA Research Centre for Physics, 1121 Budapest, Hungary;

    Department of Physics, Budapest University of Technology and Economics 1111 Budapest, Hungary;

    Experimental Physics V, Center for Electronic Correlations and Magnetism, University of Augsburg, 86135 Augsburg, Germany,Institute of Applied Physics, Academy of Sciences of Moldova, MD 2028, Chisinau, Republic of Moldova;

    Experimental Physics V, Center for Electronic Correlations and Magnetism, University of Augsburg, 86135 Augsburg, Germany;

    MTA-BME Lendület Magneto-optical Spectroscopy Research Group, 1111 Budapest, Hungary,Department of Physics, Budapest University of Technology and Economics 1111 Budapest, Hungary,Experimental Physics V, Center for Electronic Correlations and Magnetism, University of Augsburg, 86135 Augsburg, Germany;

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