Emergent geometric frustration of artificial magnetic skyrmion crystals
Magnetic skyrmions have been receiving growing attention as potential information storage and magnetic logic devices since an increasing number of materials have been identified that support skyrmion phases. Explorations of artificial frustrated systems have led to new insights into controlling and...
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sg-ntu-dr.10356-841292023-02-28T19:41:59Z Emergent geometric frustration of artificial magnetic skyrmion crystals Ma, Fusheng Reichhardt, C. Gan, Weiliang Reichhardt, C. J. Olson Lew, Wen Siang School of Physical and Mathematical Sciences Magnetism Magnetic Texture Magnetic skyrmions have been receiving growing attention as potential information storage and magnetic logic devices since an increasing number of materials have been identified that support skyrmion phases. Explorations of artificial frustrated systems have led to new insights into controlling and engineering new emergent frustration phenomena in frustrated and disordered systems. Here, we propose a skyrmion spin ice, giving a unifying framework for the study of geometric frustration of skyrmion crystals (SCs) in a nonfrustrated artificial geometrical lattice as a consequence of the structural confinement of skyrmions in magnetic potential wells. The emergent ice rules from the geometrically frustrated SCs highlight a novel phenomenon in this skyrmion system: emergent geometrical frustration. We demonstrate how SC topology transitions between a nonfrustrated periodic configuration and a frustrated icelike ordering can also be realized reversibly. The proposed artificial frustrated skyrmion systems can be annealed into different ice phases with an applied current-induced spin-transfer torque, including a long-range ordered ice rule obeying ground state, as-relaxed random state, biased state, and monopole state. The spin-torque reconfigurability of the artificial skyrmion ice states, difficult to achieve in other artificial spin ice systems, is compatible with standard spintronic device fabrication technology, which makes the semiconductor industrial integration straightforward. NRF (Natl Research Foundation, S’pore) MOE (Min. of Education, S’pore) Published version 2017-07-19T04:55:45Z 2019-12-06T15:38:55Z 2017-07-19T04:55:45Z 2019-12-06T15:38:55Z 2016 Journal Article Ma, F., Reichhardt, C., Gan, W., Reichhardt, C. J. O., & Lew, W. S. (2016). Emergent geometric frustration of artificial magnetic skyrmion crystals. Physical Review B, 94(14), 144405-. 2469-9950 https://hdl.handle.net/10356/84129 http://hdl.handle.net/10220/42934 10.1103/PhysRevB.94.144405 en Physical Review B © 2016 American Physical Society. This paper was published in Physical Review B and is made available as an electronic reprint (preprint) with permission of American Physical Society. The published version is available at: [http://dx.doi.org/10.1103/PhysRevB.94.144405]. One print or electronic copy may be made for personal use only. Systematic or multiple reproduction, distribution to multiple locations via electronic or other means, duplication of any material in this paper for a fee or for commercial purposes, or modification of the content of the paper is prohibited and is subject to penalties under law. 11 p. application/pdf |
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Magnetism Magnetic Texture Ma, Fusheng Reichhardt, C. Gan, Weiliang Reichhardt, C. J. Olson Lew, Wen Siang Emergent geometric frustration of artificial magnetic skyrmion crystals |
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Magnetic skyrmions have been receiving growing attention as potential information storage and magnetic logic devices since an increasing number of materials have been identified that support skyrmion phases. Explorations of artificial frustrated systems have led to new insights into controlling and engineering new emergent frustration phenomena in frustrated and disordered systems. Here, we propose a skyrmion spin ice, giving a unifying framework for the study of geometric frustration of skyrmion crystals (SCs) in a nonfrustrated artificial geometrical lattice as a consequence of the structural confinement of skyrmions in magnetic potential wells. The emergent ice rules from the geometrically frustrated SCs highlight a novel phenomenon in this skyrmion system: emergent geometrical frustration. We demonstrate how SC topology transitions between a nonfrustrated periodic configuration and a frustrated icelike ordering can also be realized reversibly. The proposed artificial frustrated skyrmion systems can be annealed into different ice phases with an applied current-induced spin-transfer torque, including a long-range ordered ice rule obeying ground state, as-relaxed random state, biased state, and monopole state. The spin-torque reconfigurability of the artificial skyrmion ice states, difficult to achieve in other artificial spin ice systems, is compatible with standard spintronic device fabrication technology, which makes the semiconductor industrial integration straightforward. |
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School of Physical and Mathematical Sciences |
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School of Physical and Mathematical Sciences Ma, Fusheng Reichhardt, C. Gan, Weiliang Reichhardt, C. J. Olson Lew, Wen Siang |
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Article |
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Ma, Fusheng Reichhardt, C. Gan, Weiliang Reichhardt, C. J. Olson Lew, Wen Siang |
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Ma, Fusheng |
title |
Emergent geometric frustration of artificial magnetic skyrmion crystals |
title_short |
Emergent geometric frustration of artificial magnetic skyrmion crystals |
title_full |
Emergent geometric frustration of artificial magnetic skyrmion crystals |
title_fullStr |
Emergent geometric frustration of artificial magnetic skyrmion crystals |
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Emergent geometric frustration of artificial magnetic skyrmion crystals |
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emergent geometric frustration of artificial magnetic skyrmion crystals |
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2017 |
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https://hdl.handle.net/10356/84129 http://hdl.handle.net/10220/42934 |
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