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CuFeGe中相互竞争的磁性基态及其与晶格的耦合

Competing magnetic ground states and their coupling to the crystal lattice in CuFeGe.

作者信息

May Andrew F, Calder Stuart, Parker David S, Sales Brian C, McGuire Michael A

机构信息

Materials Science and Technology Division, Oak Ridge National Laboratory, Oak Ridge, TN 37831, US.

Quantum Condensed Matter Division, Oak Ridge National Laboratory, Oak Ridge, TN 37831, USA.

出版信息

Sci Rep. 2016 Oct 14;6:35325. doi: 10.1038/srep35325.

Abstract

Identifying and characterizing systems with coupled and competing interactions is central to the development of physical models that can accurately describe and predict emergent behavior in condensed matter systems. This work demonstrates that the metallic compound CuFeGe has competing magnetic ground states, which are shown to be strongly coupled to the lattice and easily manipulated using temperature and applied magnetic fields. Temperature-dependent magnetization M measurements reveal a ferromagnetic-like onset at 228 (1) K and a broad maximum in M near 180 K. Powder neutron diffraction confirms antiferromagnetic ordering below T ≈ 175 K, and an incommensurate spin density wave is observed below ≈125 K. Coupled with the small refined moments (0.5-1 μ/Fe), this provides a picture of itinerant magnetism in CuFeGe. The neutron diffraction data also reveal a coexistence of two magnetic phases that further highlights the near-degeneracy of various magnetic states. These results demonstrate that the ground state in CuFeGe can be easily manipulated by external forces, making it of particular interest for doping, pressure, and further theoretical studies.

摘要

识别和表征具有耦合和竞争相互作用的系统是开发能够准确描述和预测凝聚态系统中涌现行为的物理模型的核心。这项工作表明,金属化合物CuFeGe具有竞争磁基态,这些基态被证明与晶格强烈耦合,并且可以通过温度和外加磁场轻松操控。温度依赖的磁化强度M测量结果显示,在228(1)K处有类似铁磁的起始点,在180K附近M出现宽峰。粉末中子衍射证实,在T≈175K以下存在反铁磁有序,并且在≈125K以下观察到非公度自旋密度波。再加上精细的小磁矩(0.5 - 1μ/Fe),这描绘了CuFeGe中的巡游磁性。中子衍射数据还揭示了两个磁相的共存,这进一步突出了各种磁态的近简并性。这些结果表明,CuFeGe的基态可以很容易地被外力操控,这使其在掺杂、压力和进一步的理论研究方面具有特别的吸引力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4ef6/5064417/8f4ba22b60aa/srep35325-f1.jpg

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