Single-atom spintronics

被引:0
|
作者
Hua, Susan Z. [1 ]
Sullivan, Matthew R. [1 ]
Armstrong, Jason N. [1 ]
机构
[1] Materials Program, Mechanical and Aerospace Engineering Department, State University of New York at Buffalo, Buffalo, NY 14260, United States
关键词
Domain walls - Magnetic domains - Magnetoresistance - Point contacts - Probability;
D O I
暂无
中图分类号
学科分类号
摘要
Recent work on magnetic quantum point contacts (QPCs) was discussed. Complete magnetoresistance loops across Co QPCs as small as a single atom was measured. The remarkable feature of these QPCs is the rapid oscillatory decay in magnetoresistance with the increase of contact size. In addition, stepwise or quantum magnetoresistance loops are observed, resulting from varying transmission probability of the available discrete conductance channels because the sample is cycled between the ferromagnetic (F) and antiferromagnetic (AF) aligned states. Quantized conductance combined with spin dependent transmission of electron waves gives rise to a multi-channel system with a quantum domain wall acting as a valve, i.e., a quantum spin-valve. Behavior of a few-atom QPC is built on the behavior of a single-atom QPC and hence the summarization of results as 'single-atom spintronics'. An evolutionary trace of spin-dependent electron transmission from a single atom to bulk is provided, the requisite hallmarks of artefact-free magnetoresistance is established across a QPC-stepwise or quantum magnetoresistance loops and size dependent oscillatory magnetoresistance.
引用
收藏
页码:146 / 153
相关论文
共 50 条
  • [41] A single-atom heat engine
    Lutz, Eric
    PHYSICS TODAY, 2020, 73 (05) : 66 - 67
  • [42] A single-atom quantum memory
    Holger P. Specht
    Christian Nölleke
    Andreas Reiserer
    Manuel Uphoff
    Eden Figueroa
    Stephan Ritter
    Gerhard Rempe
    Nature, 2011, 473 : 190 - 193
  • [43] Spectra of single-atom lasers
    Clemens, JP
    Rice, PR
    Pedrotti, LM
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS, 2004, 21 (11) : 2025 - 2034
  • [44] A single-atom alloy catalyst
    Kraft, Arno
    CHEMISTRY & INDUSTRY, 2021, 85 (12) : 40 - 41
  • [45] Single-atom absorption imaging
    Streed, E. W.
    Jechow, A.
    Norton, B. G.
    Kielpinski, D.
    ADVANCES IN PHOTONICS OF QUANTUM COMPUTING, MEMORY, AND COMMUNICATION V, 2012, 8272
  • [46] Coherent single-atom superradiance
    Kim, Junki
    Yang, Daeho
    Oh, Seung-hoon
    An, Kyungwon
    SCIENCE, 2018, 359 (6376) : 662 - 665
  • [47] Single-Atom Catalysts: Are You Really Single?
    Dobrota, Ana S.
    Pasti, Igor A.
    JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2024, 16 (01): : 77 - 86
  • [48] Why do Single-Atom Alloys Catalysts Outperform both Single-Atom Catalysts and Nanocatalysts on MXene?
    Guan, Shuyan
    Yuan, Zhenluo
    Zhuang, Zechao
    Zhang, Huanhuan
    Wen, Hao
    Fan, Yanping
    Li, Baojun
    Wang, Dingsheng
    Liu, Baozhong
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2024, 63 (04)
  • [49] Electrostatic polarization in single-atom catalysis
    Pan, Yanghang
    Tang, Lingyu
    Ding, Mengning
    CELL REPORTS PHYSICAL SCIENCE, 2023, 4 (05):
  • [50] Magnesium single-atom catalysts with superbasicity
    Xiang-Bin Shao
    Yao Nian
    Song-Song Peng
    Guo-Song Zhang
    Meng-Xuan Gu
    You Han
    Xiao-Qin Liu
    Lin-Bing Sun
    Science China(Chemistry), 2023, (06) : 1737 - 1743