Deterministic Domain Wall Motion Orthogonal To Current Flow Due To Spin Orbit Torque
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作者:
Debanjan Bhowmik
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机构:University of California Berkeley,Department of Electrical Engineering and Computer Sciences
Debanjan Bhowmik
Mark E. Nowakowski
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机构:University of California Berkeley,Department of Electrical Engineering and Computer Sciences
Mark E. Nowakowski
Long You
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机构:University of California Berkeley,Department of Electrical Engineering and Computer Sciences
Long You
OukJae Lee
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机构:University of California Berkeley,Department of Electrical Engineering and Computer Sciences
OukJae Lee
David Keating
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机构:University of California Berkeley,Department of Electrical Engineering and Computer Sciences
David Keating
Mark Wong
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机构:University of California Berkeley,Department of Electrical Engineering and Computer Sciences
Mark Wong
Jeffrey Bokor
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机构:University of California Berkeley,Department of Electrical Engineering and Computer Sciences
Jeffrey Bokor
Sayeef Salahuddin
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机构:University of California Berkeley,Department of Electrical Engineering and Computer Sciences
Sayeef Salahuddin
机构:
[1] University of California Berkeley,Department of Electrical Engineering and Computer Sciences
[2] University of California Berkeley,Department of Physics
[3] Lawrence Berkeley National Laboratory,Material Science Division
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Scientific Reports
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摘要:
Spin-polarized electrons can move a ferromagnetic domain wall through the transfer of spin angular momentum when current flows in a magnetic nanowire. Such current induced control of a domain wall is of significant interest due to its potential application for low power ultra high-density data storage. In previous reports, it has been observed that the motion of the domain wall always happens parallel to the current flow – either in the same or opposite direction depending on the specific nature of the interaction. In contrast, here we demonstrate deterministic control of a ferromagnetic domain wall orthogonal to current flow by exploiting the spin orbit torque in a perpendicularly polarized Ta/CoFeB/MgO heterostructure in presence of an in-plane magnetic field. Reversing the polarity of either the current flow or the in-plane field is found to reverse the direction of the domain wall motion. Notably, such orthogonal motion with respect to current flow is not possible from traditional spin transfer torque driven domain wall propagation even in presence of an external magnetic field. Therefore the domain wall motion happens purely due to spin orbit torque. These results represent a completely new degree of freedom in current induced control of a ferromagnetic domain wall.
机构:
Pohang Univ Sci & Technol, PCTP, Pohang 790784, Kyungbuk, South Korea
Pohang Univ Sci & Technol, Dept Phys, Pohang 790784, Kyungbuk, South KoreaKorea Univ, Dept Mat Sci & Engn, Seoul 136701, South Korea
Ryu, Jisu
Seo, Soo-Man
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Korea Univ, Dept Mat Sci & Engn, Seoul 136701, South KoreaKorea Univ, Dept Mat Sci & Engn, Seoul 136701, South Korea
Seo, Soo-Man
Lee, Kyung-Jin
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Korea Univ, Dept Mat Sci & Engn, Seoul 136701, South KoreaKorea Univ, Dept Mat Sci & Engn, Seoul 136701, South Korea
机构:
Korea Natl Univ Educ, Dept Phys Educ, Cheongju 28173, South KoreaKorea Natl Univ Educ, Dept Phys Educ, Cheongju 28173, South Korea
Ryu, Kwang-Su
Yang, See-Hun
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机构:
IBM Corp, Almaden Res Ctr, San Jose, CA 95120 USAKorea Natl Univ Educ, Dept Phys Educ, Cheongju 28173, South Korea
Yang, See-Hun
Thomas, Luc
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TDK Headway Technol, Milpitas, CA 95035 USAKorea Natl Univ Educ, Dept Phys Educ, Cheongju 28173, South Korea
Thomas, Luc
Parkin, Stuart
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机构:
IBM Corp, Almaden Res Ctr, San Jose, CA 95120 USA
Max Planck Inst Microstruct Phys, D-006120 Halle, Saale, GermanyKorea Natl Univ Educ, Dept Phys Educ, Cheongju 28173, South Korea