Skyrmion dynamics in magnetic thin films

Magnetic skyrmions are nanoscopic magnetization textures that have intrigued the spintronics community for more than a decade now due to their potential as a next-generation information carrier. Their highly sought-after characteristics, such as high current-induced transport speeds, small sizes, an...

Full description

Saved in:
Bibliographic Details
Main Author: Gan, Weiliang
Other Authors: Lew Wen Siang
Format: Thesis-Doctor of Philosophy
Language:English
Published: Nanyang Technological University 2020
Subjects:
Online Access:https://hdl.handle.net/10356/137062
Tags: Add Tag
No Tags, Be the first to tag this record!
Institution: Nanyang Technological University
Language: English
id sg-ntu-dr.10356-137062
record_format dspace
spelling sg-ntu-dr.10356-1370622023-02-28T23:37:45Z Skyrmion dynamics in magnetic thin films Gan, Weiliang Lew Wen Siang School of Physical and Mathematical Sciences wensiang@ntu.edu.sg Science::Physics Magnetic skyrmions are nanoscopic magnetization textures that have intrigued the spintronics community for more than a decade now due to their potential as a next-generation information carrier. Their highly sought-after characteristics, such as high current-induced transport speeds, small sizes, and topological stability allows them to simultaneously fulfil the function of both random-access memory and high capacity storage media. However, several challenges should first be addressed, such as the skyrmion Hall effect (SkHE), skyrmion transport efficiency, and the lack of suitable injection methods. In this thesis, the dynamics of skyrmions under the influence of spin-orbit torques and magnetostatic field gradients were investigated by using a combination of theoretical and numerical modelling methods. Our model on spin-orbit torque reveals that the skyrmion speed scales linearly with its size, leading to a tradeoff between skyrmion density and speed. A mechanism exploiting the transverse repulsive forces from the nanowire edges was revealed, where the skyrmion speed was shown to be increased many times. A similar mechanism was found in antiferromagnetically-coupled skyrmions, that allows the negation of the SkHE while passively increasing their speed. Furthermore, the difficulty in nucleating these type skyrmions was also tackled; a combination of DMI-induced edge tilting and spin-orbit torque allows single skyrmions to be injected on-demand efficiently. For the development of energy-efficient skyrmion memory devices, a model was developed to describe the skyrmion motion under a voltage-controlled magnetic anisotropy (VCMA) gradient. As no electric currents are required, the VCMA-based devices consume several orders of magnitude lesser power. A VCMA-based device architecture was proposed using multiplexed discrete gate electrodes. A maximum speed of 70 ms-1 was achieved, similar to current-induced speeds. However, VCMA-based devices are clear winners in terms of design flexibility; a recirculating skyrmion track was demonstrated, where skyrmions could be shifted and cycled in a loop. To overcome the SkHE in such devices, a transverse driving scheme was devised such that the net skyrmion motion is directed parallel to the device axis. Finally, a hybrid drive combining both the transverse and longitudinal scheme was also demonstrated, resulting in high velocity skyrmion motion with low SkHE. While only a few types of skyrmion devices were discussed, the model developed in this thesis serves as a platform for the design of novel VMCA devices. Doctor of Philosophy 2020-02-18T05:14:57Z 2020-02-18T05:14:57Z 2019 Thesis-Doctor of Philosophy Gan, W. (2019). Skyrmion dynamics in magnetic thin films. Doctoral thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/137062 10.32657/10356/137062 en This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License (CC BY-NC 4.0). application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Science::Physics
spellingShingle Science::Physics
Gan, Weiliang
Skyrmion dynamics in magnetic thin films
description Magnetic skyrmions are nanoscopic magnetization textures that have intrigued the spintronics community for more than a decade now due to their potential as a next-generation information carrier. Their highly sought-after characteristics, such as high current-induced transport speeds, small sizes, and topological stability allows them to simultaneously fulfil the function of both random-access memory and high capacity storage media. However, several challenges should first be addressed, such as the skyrmion Hall effect (SkHE), skyrmion transport efficiency, and the lack of suitable injection methods. In this thesis, the dynamics of skyrmions under the influence of spin-orbit torques and magnetostatic field gradients were investigated by using a combination of theoretical and numerical modelling methods. Our model on spin-orbit torque reveals that the skyrmion speed scales linearly with its size, leading to a tradeoff between skyrmion density and speed. A mechanism exploiting the transverse repulsive forces from the nanowire edges was revealed, where the skyrmion speed was shown to be increased many times. A similar mechanism was found in antiferromagnetically-coupled skyrmions, that allows the negation of the SkHE while passively increasing their speed. Furthermore, the difficulty in nucleating these type skyrmions was also tackled; a combination of DMI-induced edge tilting and spin-orbit torque allows single skyrmions to be injected on-demand efficiently. For the development of energy-efficient skyrmion memory devices, a model was developed to describe the skyrmion motion under a voltage-controlled magnetic anisotropy (VCMA) gradient. As no electric currents are required, the VCMA-based devices consume several orders of magnitude lesser power. A VCMA-based device architecture was proposed using multiplexed discrete gate electrodes. A maximum speed of 70 ms-1 was achieved, similar to current-induced speeds. However, VCMA-based devices are clear winners in terms of design flexibility; a recirculating skyrmion track was demonstrated, where skyrmions could be shifted and cycled in a loop. To overcome the SkHE in such devices, a transverse driving scheme was devised such that the net skyrmion motion is directed parallel to the device axis. Finally, a hybrid drive combining both the transverse and longitudinal scheme was also demonstrated, resulting in high velocity skyrmion motion with low SkHE. While only a few types of skyrmion devices were discussed, the model developed in this thesis serves as a platform for the design of novel VMCA devices.
author2 Lew Wen Siang
author_facet Lew Wen Siang
Gan, Weiliang
format Thesis-Doctor of Philosophy
author Gan, Weiliang
author_sort Gan, Weiliang
title Skyrmion dynamics in magnetic thin films
title_short Skyrmion dynamics in magnetic thin films
title_full Skyrmion dynamics in magnetic thin films
title_fullStr Skyrmion dynamics in magnetic thin films
title_full_unstemmed Skyrmion dynamics in magnetic thin films
title_sort skyrmion dynamics in magnetic thin films
publisher Nanyang Technological University
publishDate 2020
url https://hdl.handle.net/10356/137062
_version_ 1759854254276739072