Electrical probing of field-driven cascading quantized transitions of skyrmion cluster states in MnSi nanowires

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作者
Haifeng Du
Dong Liang
Chiming Jin
Lingyao Kong
Matthew J. Stolt
Wei Ning
Jiyong Yang
Ying Xing
Jian Wang
Renchao Che
Jiadong Zang
Song Jin
Yuheng Zhang
Mingliang Tian
机构
[1] High Magnetic Field Laboratory,Department of Chemistry
[2] Chinese Academy of Science (CAS),Institute for Quantum Matter and Department of Physics and Astronomy
[3] University of Wisconsin—Madison,Department of Physics and Materials Science Program
[4] Institute of Fluid Physics,undefined
[5] China Academy of Engineering Physics,undefined
[6] International Center for Quantum Materials,undefined
[7] School of Physics,undefined
[8] Peking University,undefined
[9] Advanced Materials Laboratory,undefined
[10] Fudan University,undefined
[11] Johns Hopkins University,undefined
[12] University of New Hampshire,undefined
[13] Collaborative Innovation Center of Advanced Microstructures,undefined
来源
Nature Communications | / 6卷
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摘要
Magnetic skyrmions are topologically stable whirlpool-like spin textures that offer great promise as information carriers for future spintronic devices. To enable such applications, particular attention has been focused on the properties of skyrmions in highly confined geometries such as one-dimensional nanowires. Hitherto, it is still experimentally unclear what happens when the width of the nanowire is comparable to that of a single skyrmion. Here, we achieve this by measuring the magnetoresistance in ultra-narrow MnSi nanowires. We observe quantized jumps in magnetoresistance versus magnetic field curves. By tracking the size dependence of the jump number, we infer that skyrmions are assembled into cluster states with a tunable number of skyrmions, in agreement with the Monte Carlo simulations. Our results enable an electric reading of the number of skyrmions in the cluster states, thus laying a solid foundation to realize skyrmion-based memory devices.
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