Tuning of Magnetic Properties of α-RuCl3 Single Crystal by Cr Doping

被引:0
|
作者
袁宇杰 [1 ]
李承贺 [2 ]
田尚杰 [2 ]
雷和畅 [2 ]
张晓 [1 ]
机构
[1] State Key Laboratory of Information Photonicsx and Optical Communications, and School of Science,Beijing University of Posts and Telecommunications
[2] Department of Physics, and Beijing Key Laboratory of Opto-electronic Functional Materials and Micro-nano Devices,Renmin University of China
基金
中央高校基本科研业务费专项资金资助;
关键词
D O I
暂无
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
We study the influence of Cr doping on magnetic properties of α-RuClsingle crystals in detail.With increasing Cr content,the c-axial lattice parameter increases gradually,implying that the Cr doping may weaken the interlayer interactions.The magnetism of RuCrClsingle crystals evolves from a long-range AFM order to a possible spin-glass state with Cr doping.The appearance of a possible spin-glass state can be explained by the introduction of FM interaction by Crions,which competes with the AFM interaction between Ruions.Noreover,the larger magnetic moment of Crion with S=3/2 than Ruion with J=1/2 also results in a monotonic increase of the effective moment of RuCrClsingle crystal.
引用
收藏
页码:128 / 131
页数:4
相关论文
共 50 条
  • [21] Optically Driven Magnetic Phase Transition of Monolayer RuCl3
    Tian, Yingzhen
    Gao, Weiwei
    Henriksen, Erik A.
    Chelikowsky, James R.
    Yang, Li
    NANO LETTERS, 2019, 19 (11) : 7673 - 7680
  • [22] Ab Initio Mismatched Interface Theory of Graphene on α-RuCl3: Doping and Magnetism
    Gerber, Eli
    Yao, Yuan
    Arias, Tomas A.
    Kim, Eun-Ah
    PHYSICAL REVIEW LETTERS, 2020, 124 (10)
  • [23] Monoclinic crystal structure of α-RuCl3 and the zigzag antiferromagnetic ground state
    Johnson, R. D.
    Williams, S. C.
    Haghighirad, A. A.
    Singleton, J.
    Zapf, V.
    Manuel, P.
    Mazin, I. I.
    Li, Y.
    Jeschke, H. O.
    Valenti, R.
    Coldea, R.
    PHYSICAL REVIEW B, 2015, 92 (23)
  • [24] Highly anisotropic optical, electronic and magnetic properties of the Kitaev spin liquid candidate α-RuCl3
    Bouhmouche, A.
    Jabar, A.
    Hlil, E. K.
    Moubah, R.
    APPLIED MATERIALS TODAY, 2024, 37
  • [25] Scale-invariant magnetic anisotropy in RuCl3 at high magnetic fields
    K. A. Modic
    Ross D. McDonald
    J. P. C. Ruff
    Maja D. Bachmann
    You Lai
    Johanna C. Palmstrom
    David Graf
    Mun K. Chan
    F. F. Balakirev
    J. B. Betts
    G. S. Boebinger
    Marcus Schmidt
    Michael J. Lawler
    D. A. Sokolov
    Philip J. W. Moll
    B. J. Ramshaw
    Arkady Shekhter
    Nature Physics, 2021, 17 : 240 - 244
  • [26] Probing α - RuCl3 Beyond Magnetic Order: Effects of Temperature and Magnetic Field
    Winter, Stephen M.
    Riedl, Kira
    Kaib, David
    Coldea, Radu
    Valenti, Roser
    PHYSICAL REVIEW LETTERS, 2018, 120 (07)
  • [27] Electronic and magnetic properties of monolayer α-RuCl3: a first-principles and Monte Carlo study
    Sarikurt, S.
    Kadioglu, Y.
    Ersan, F.
    Vatansever, E.
    Akturk, O. Uzengi
    Yuksel, Y.
    Akinci, U.
    Akturk, E.
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2018, 20 (02) : 997 - 1004
  • [28] Possible structural transformation and enhanced magnetic fluctuations in exfoliated α-RuCl3
    Zhou, Boyi
    Wang, Yiping
    Osterhoudt, Gavin B.
    Lampen-Kelley, Paula
    Mandrus, David
    He, Rui
    Burch, Kenneth S.
    Henriksen, Erik A.
    JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 2019, 128 (291-295) : 291 - 295
  • [29] Detuning the Honeycomb of the α-RuCl3 Kitaev Lattice: A Case of Cr3+ Dopant
    Roslova, Maria
    Hunger, Jens
    Bastien, Gael
    Pohl, Darius
    Haghighi, Hossein M.
    Wolter, Anja U. B.
    Isaeva, Anna
    Schwarz, Ulrich
    Rellinghaus, Bernd
    Nielsch, Kornelius
    Buechner, Bernd
    Doert, Thomas
    INORGANIC CHEMISTRY, 2019, 58 (10) : 6659 - 6668
  • [30] Ferromagnetic Kitaev interaction and the origin of large magnetic anisotropy in α-RuCl3
    Jennifer A. Sears
    Li Ern Chern
    Subin Kim
    Pablo J. Bereciartua
    Sonia Francoual
    Yong Baek Kim
    Young-June Kim
    Nature Physics, 2020, 16 : 837 - 840