论文标题

CO3SN2S2 KAGOME FERROMAGNET的磁相跃迁的非常规临界行为

Unconventional critical behaviors at the magnetic phase transition of Co3Sn2S2 kagome ferromagnet

论文作者

Kassem, Mohamed A., Tabata, Yoshikazu, Waki, Takeshi, Nakamura, Hiroyuki

论文摘要

CO3SN2S2作为高度单轴各向异性Kagome Ferromagnet的罕见例子引起了人们的兴趣,表现出沮丧的晶格磁性和拓扑结合。最近,通过对磁化和AC敏感性的精确测量,我们发现了一个低场异常磁相(A-phase),其自旋动力学非常缓慢,出现在Curie温度(T_C)以下。如先前的原位Lorentz-TEM研究中所示,A期在通过T_C冷却后,寄主高密度结构域气泡。在这里,我们通过使用高质量的单晶体对T_C处异常磁过渡(MT)(MT)的进一步特征进行了揭示。使用不同的方法(修改的箭头图,kouvel-fisher方法和磁电效应)对T_C(177 K)周围众多磁化等温线的分析产生了一致的关键指数,这些指数无法满足标准二阶MT模型的理论预测。对磁熵变化的磁化,磁熵变化和场末体的缩放分析,所有这些都始终显示出与通用曲线以下TC以下的低场偏差。我们的结果表明,CO3SN2S2的MT无法解释为常规的二阶类型,并暗示T_C以下的异常磁态。

Co3Sn2S2 has generated a growing interest as a rare example of the highly uniaxial anisotropic kagome ferromagnet showing a combination of frustrated-lattice magnetism and topology. Recently, via precise measurements of the magnetization and AC susceptibility we have found a low-field anomalous magnetic phase (A-phase) with very slow spin dynamics that appears just below the Curie temperature (T_C). The A-phase hosts high-density domain bubbles after cooling through T_C as revealed in a previous in-situ Lorentz-TEM study. Here, we present further signatures of the anomalous magnetic transition (MT) at T_C revealed by a study of the critical behaviors of the magnetization and magnetocaloric effect using a high-quality single crystal. Analyses of numerous magnetization isotherms around T_C (177 K) using different approaches (the modified Arrot plot, Kouvel-Fisher method and magnetocaloric effect) result in consistent critical exponents that do not satisfy the theoretical predictions of standard second-order-MT models. Scaling analyses for the magnetization, magnetic entropy change and field-exponent of the magnetic entropy change, all consistently show low-field deviations below TC from the universal curves. Our results reveal that the MT of Co3Sn2S2 can not be explained as a conventional second-order type and suggest an anomalous magnetic state below T_C.

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