| CONDENSED MATTER: ELECTRONIC STRUCTURE, ELECTRICAL, MAGNETIC, AND OPTICAL PROPERTIES |
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Current-driven magnetic domain wall motion in heterostructure films |
| Rui Fu(付瑞), Jiwen Chen(陈集文), Zichang Huang(黄子畅), Jingyi Guan(管璟一), Zidong Wang(王子东), and Yan Zhou(周艳)† |
| School of Science and Engineering, The Chinese University of Hong Kong, Shenzhen 518172, China |
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Abstract With the rise of big data, the increasing volume of information has raised significant demands on data storage technologies, presenting various challenges to current information storage solutions. Consequently, finding more efficient and higher-capacity methods for data storage has become crucial. In comparison to conventional semiconductor random access memory, magnetic random access memory (MRAM), which has been progressively developed in recent years, shows promise as a candidate for the next generation of information storage due to its notable advantages, including non-volatility, high density, stability, low power consumption, and resistance to radiation. Among the MRAM variants, spin-orbit torque magnetic random access memory (SOT-MRAM) exhibits considerable potential for advancement. Utilizing a vertical magnetized thin film structure made up of heavy metal and ferromagnetic metal, SOT-MRAM leverages the strong spin-orbit coupling effect of the heavy metal to convert the flow of charge into pure spin flow. This process also allows for the injection of spin accumulation from the interface into the adjacent magnetic layer through mechanisms such as the spin Hall effect and the Rashba effect, ultimately applying spin-orbit torque to manipulate the magnetic moment of the magnetic layer, facilitating its reversal. This paper primarily investigates the physical mechanisms underlying the motion of magnetic domain walls driven by current-induced spin-orbit moments in vertically magnetized heterostructures. Utilizing a magneto-optical Kerr microscope to observe the movement of the magnetic domain walls, the study analyzes and compares the velocity behaviors of the domain walls across different cobalt thicknesses. These investigations offer valuable design insights for applications involving track memory driven by spin-orbit moments.
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Received: 26 February 2025
Revised: 13 June 2025
Accepted manuscript online: 16 June 2025
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PACS:
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75.78.-n
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(Magnetization dynamics)
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| Fund: Project supported by the Shenzhen Fundamental Research Fund (Grant No. JCYJ20210324120213037), the Basic and Applied Basic Research Foundation of Guangdong Province, China (Grant No. 2021B1515120047), the Fund from the Shenzhen Peacock Group Plan (Grant No. KQTD20180413181702403), the National Natural Science Foundation of China (Grant Nos. 12374123 and 12204396), and the 2023 SZSTI stable support scheme. |
Corresponding Authors:
Yan Zhou
E-mail: zhouyan@cuhk.edu.cn
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Cite this article:
Rui Fu(付瑞), Jiwen Chen(陈集文), Zichang Huang(黄子畅), Jingyi Guan(管璟一), Zidong Wang(王子东), and Yan Zhou(周艳) Current-driven magnetic domain wall motion in heterostructure films 2025 Chin. Phys. B 34 127502
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[1] Coey J M 2010 Magnetism (Cambridge University Press) p. 620 [2] Garello K, Yasin F, Hody H, Couet S, Souriau L, Sharifi S H, Swerts J, Carpenter R, Rao S, Kim W, Wu J, Sethu K K V, Pak M, Jossart N, Crotti D, Furnémont A and Kar G S 2019 Symposium on VLSI Circuits, June 09–14, 2019, Kyoto, Japan p. T194 [3] Grimaldi E, Krizakova V, Sala G, Yasin F, Couet S, Sankar Kar G, Garello K and Gambardella P 2020 Nat. Nanotech. 15 111 [4] Sinova J, Valenzuela S O, Wunderlich J, Back C H and Jungwirth T 2015 Rev. Mod. Phys. 87 1213 [5] Hoffmann A 2013 IEEE Transactions on Magnetics 49 5172 [6] Yu G, Upadhyaya P, Fan Y, Alzate J G, Jiang W J, Wong K L, Takei S, Bender S, Chang L T, Jiang Y, Lang M, Tang J S, Wang Y, Tserkovnyak Y, Khalili Amiri P and Wang K L 2014 Nat. Nanotech. 9 548 [7] Murray N, Liao W B, Wang T C, Chang L J, Tsai L Z, Tsai T Y, Lee S F and Pai C F 2019 Phys. Rev. B 100 104441 [8] Liu Y, Zhou B and Zhu J G 2019 Sci. Rep. 9 325 [9] Lau Y C, Betto D, Rode K, Coey J M and Stamenov P 2016 Nat. Nanotech. 11 758 [10] Wu H, Razavi S A, Shao Q M, Li X, Wong K L, Liu Y X and Wang K L 2019 Phys. Rev. B 99 184403 [11] Hansen P, Clausen C, Much G, Rosenkranz M and Witter K 1989 J. Appl. Phys. 66 756 [12] Campbell I A 1972 J. Phys. F: Metal Phys. 2 L47 [13] Baltz V, Manchon A, Tsoi M, Moriyama T, Ono T and Tserkovnyak Y 2018 Rev. Mod. Phys. 90 015005 [14] Jin S, Li J, Li Q X and Zhu J J 2024 Chin. Phys. B 33 077503 [15] Usaj G, Lustemberg P and Balseiro C A 2005 Phys. Rev. Lett. 94 036803 [16] Dugaev V K, Litvinov V I and Barnas J 2006 Phys. Rev. B 74 224438 [17] Brey L, Fertig H A and Das Sarma S 2007 Phys. Rev. Lett. 99 116802 [18] Liu Q, Liu C X, Xu C, Qi X L and Zhang S C 2009 Phys. Rev. Lett. 102 156603 [19] Zhu J J, Yao D X, Zhang S C and Chang K 2011 Phys. Rev. Lett. 106 097201 [20] Chang H R, Zhou J, Wang S X, Shan W Y and Xiao D 2015 Phys. Rev. B 92 241103 [21] Hosseini M V and Askari M 2015 Phys. Rev. B 92 224435 [22] Moore T A, Miron I M, Gaudin G, Serret G, Auffret S, Rodmacq B, Schuhl A, Pizzini S, Vogel J and Bonfim M 2008 Appl. Phys. Lett. 93 262504 [23] Miron I M, Zermatten P J, Gaudin G, Auffret S, Rodmacq B and Schuhl A 2009 Phys. Rev. Lett. 102 137202 [24] Miron I M, Moore T, Szambolics H, Buda-Prejbeanu L D, Auffret S, Rodmacq B, Pizzini S, Vogel J, Bonfim M, Schuhl A and Gaudin G 2011 Nat. Mater. 10 419 [25] Emori S, Bono D C and Beach G S 2012 Appl. Phys. Lett. 101 042405 |
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