Skyrmions in magnetic thin film heterostructures

被引:3
作者
Li Wen-Jing [1 ]
Guang Yao [1 ]
Yu Guo-Qiang [1 ]
Wan Cai-Hua [1 ]
Feng Jia-Feng [1 ]
Han Xiu-Feng [1 ]
机构
[1] Chinese Acad Sci, Inst Phys, Beijing 100190, Peoples R China
基金
爱尔兰科学基金会; 中国国家自然科学基金;
关键词
magnetic skyrmion; thin film heterojunction; spin-orbit torque; room temperature; REAL-SPACE OBSERVATION; LATTICE; DYNAMICS; GENERATION; STABILITY; MOTION; TORQUE; FIELD;
D O I
10.7498/aps.67.20180549
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Magnetic skyrmion is expected to function as an ideal information carrier for ultra-high density magnetic storage and logic functional device in the future due to its superior properties, such as topological protection, small size, and low driving current density for motion. In order to meet the basic requirements for writing and reading information in devices, one needs to be able to accurately generate, manipulate, and probe skyrmion at room temperature. Given that the history and latest developments of the skyrmion research will be reviewed comprehensively in other articles, in order to avoid repetition, in this article we briefly review a series of recent research advances we have made in magnetic multilayer materials in recent years, and discuss the advantages of relevant device applications and problems that need to be solved. They are included in three aspects as follows. 1) The room temperature skyrmion was observed in a wedge film Ta (5 nm)/ Co20Fe60B20 (CoFeB) (1 nm)/Ta (t)/MgO (2 nm)/Ta (2 nm) by a polar magneto-optical Kerr microscope. Results showed that skyrmion can be created at room temperature by controlling the perpendicular magnetic anisotropy of magnetic thin film In the following, we designed a thin film heterojunction containing an antiferromagnetic layer IrMn. The introduction of antiferromagnetic material can produce an exchange bias field in the magnetic layer, which can play the same role as an external magnetic field, making it possible to realize zero-field skyrmion. In this study, we have successfully observed a stable skyrmion at room temperature and zero magnetic field. 2) The spin-orbit torque generated by the current proved to be able to be used to manipulate the created skyrmion. In the fourth part of this review, we discuss the dynamic process of skyrmion driven by spin-orbit torque in IrMn/CoFeB heterojunctions, and the chirality of skyrmion can be deduced by the direction of its longitudinal motion driven by an applied current. Finally, a principle device based on the skyrmion is further fabricated. In this device, a set of binary data was recorded in the "track" in the presence and absence of skyrmion. Generating and manipulating numbers of skyrmions were realized by using a series of pulse currents with different amplitudes and widths. The detection of a skyrmion can be achieved by using a magnetic tunnel junction at the right end of the device. 3) The advantages of skyrmion as a storage device and the problems that need to be solved for practical applications were discussed
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页数:11
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共 65 条
[1]   Long-Wavelength Helimagnetic Order and Skyrmion Lattice Phase in Cu2OSeO3 [J].
Adams, T. ;
Chacon, A. ;
Wagner, M. ;
Bauer, A. ;
Brandl, G. ;
Pedersen, B. ;
Berger, H. ;
Lemmens, P. ;
Pfleiderer, C. .
PHYSICAL REVIEW LETTERS, 2012, 108 (23)
[2]  
[Anonymous], 2016, ARXIV161106869
[3]   Interfacial Dzyaloshinskii-Moriya interaction in perpendicularly magnetized Pt/Co/AlOx ultrathin films measured by Brillouin light spectroscopy [J].
Belmeguenai, Mohamed ;
Adam, Jean-Paul ;
Roussigne, Yves ;
Eimer, Sylvain ;
Devolder, Thibaut ;
Kim, Joo-Von ;
Cherif, Salim Mourad ;
Stashkevich, Andrey ;
Thiaville, Andre .
PHYSICAL REVIEW B, 2015, 91 (18)
[4]   Chirality in Magnetic Multilayers Probed by the Symmetry and the Amplitude of Dichroism in X-Ray Resonant Magnetic Scattering [J].
Chauleau, Jean-Yves ;
Legrand, William ;
Reyren, Nicolas ;
Maccariello, Davide ;
Collin, Sophie ;
Popescu, Horia ;
Bouzehouane, Karim ;
Cros, Vincent ;
Jaouen, Nicolas ;
Fert, Albert .
PHYSICAL REVIEW LETTERS, 2018, 120 (03)
[5]   Novel Chiral Magnetic Domain Wall Structure in Fe/Ni/Cu(001) Films [J].
Chen, G. ;
Zhu, J. ;
Quesada, A. ;
Li, J. ;
N'Diaye, A. T. ;
Huo, Y. ;
Ma, T. P. ;
Chen, Y. ;
Kwon, H. Y. ;
Won, C. ;
Qiu, Z. Q. ;
Schmid, A. K. ;
Wu, Y. Z. .
PHYSICAL REVIEW LETTERS, 2013, 110 (17)
[6]   Out-of-plane chiral domain wall spin-structures in ultrathin in-plane magnets [J].
Chen, Gong ;
Kang, Sang Pyo ;
Ophus, Colin ;
N'Diaye, Alpha T. ;
Kwon, Hee Young ;
Qiu, Ryan T. ;
Won, Changyeon ;
Liu, Kai ;
Wu, Yizheng ;
Schmid, Andreas K. .
NATURE COMMUNICATIONS, 2017, 8
[7]   Skyrmion ground state and gyration of skyrmions in magnetic nanodisks without the Dzyaloshinsky-Moriya interaction [J].
Dai, Y. Y. ;
Wang, H. ;
Tao, P. ;
Yang, T. ;
Ren, W. J. ;
Zhang, Z. D. .
PHYSICAL REVIEW B, 2013, 88 (05)
[8]   Direct Observation of the Dzyaloshinskii-Moriya Interaction in a Pt/Co/Ni Film [J].
Di, Kai ;
Zhang, Vanessa Li ;
Lim, Hock Siah ;
Ng, Ser Choon ;
Kuok, Meng Hau ;
Yu, Jiawei ;
Yoon, Jungbum ;
Qiu, Xuepeng ;
Yang, Hyunsoo .
PHYSICAL REVIEW LETTERS, 2015, 114 (04)
[9]   Perpendicular magnetic anisotropy at transition metal/oxide interfaces and applications [J].
Dieny, B. ;
Chshiev, M. .
REVIEWS OF MODERN PHYSICS, 2017, 89 (02)
[10]   Edge-mediated skyrmion chain and its collective dynamics in a confined geometry [J].
Du, Haifeng ;
Che, Renchao ;
Kong, Lingyao ;
Zhao, Xuebing ;
Jin, Chiming ;
Wang, Chao ;
Yang, Jiyong ;
Ning, Wei ;
Li, Runwei ;
Jin, Changqing ;
Chen, Xianhui ;
Zang, Jiadong ;
Zhang, Yuheng ;
Tian, Mingliang .
NATURE COMMUNICATIONS, 2015, 6