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Spin-Transfer Torque and Spin-Orbit Torque Driven Dynamics of Chiral Domain-Walls : 스핀 전달 토크와 스핀 오비탈 토크에 의한 나사선 자구벽 운동

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dc.contributor.advisor최석봉-
dc.contributor.author제숭근-
dc.date.accessioned2017-07-19T06:06:57Z-
dc.date.available2017-07-19T06:06:57Z-
dc.date.issued2015-02-
dc.identifier.other000000025231-
dc.identifier.urihttp://dcollection.snu.ac.kr:80/jsp/common/DcLoOrgPer.jsp?sItemId=000000025231-
dc.description학위논문(박사)--서울대학교 대학원 :자연과학대학 물리·천문학부,2015. 2. 최석봉.-
dc.description.abstractControlling domain-walls (DWs) by electric current promises the realization of future spintronic memory and logic devices. Since the first theoretical possibility of manipulating magnetic DWs by electric currents was suggested in the 1980s, now it is found that there are three important ingredients for the current-driven domain wall-motion, that is, spin-transfer torque (STT), spin-orbit torque (SOT) and Dzyaloshinskii-Moriya interaction (DMI). In this thesis, the current-driven DW motion in perpendicularly magnetized Pt/Co/Pt system was investigated in the framework of these up-to dated mechanisms.
For this study, scanning magneto-optical Kerr effect (MOKE) microscope, equipped with out-of plane and in-plane electromagnets, was developed to observe the magnetic domain and DW dynamics. The out-of-plane electromagnet was used to drive the DW motion and the in-plane electromagnet was used to control the DW structure which is crucial factor for the effect of SOT on DW.
We first investigate the DW structure dependence of magnetic field-driven DW motion. Interestingly, we observe a symmetry-breaking in DW dynamics under in-plane bias field. This symmetry-breaking is found to be caused by the existence of DMI in Pt/Co/Pt system. From the observation of asymmetric DW dynamics, we developed a simple method to evaluate the built-in DW chirality stabilized by DMI.
Based on the determined DW chirality, we then succeed in separating both effects of STT and SOT. From the analysis, we found that there exists a new degree of freedom in STT—the negative STT (nSTT)—that pushes DWs to the opposite direction of standard STT mechanism. The efficiency of nSTT is found to be comparable to that of SOT, signalling the possibility of a promising operation mechanism for the emerging spintronic devices.
As an effort in the application, we also study the extrinsic method to obtain single domain pattern which is important for the simple operation of DW motion-based devices. By reducing the width of ferromagnetic wire, we observe the transition from dendrite to single domain that gives the breakthrough in the limit of intrinsic material properties.
Our findings in this thesis provide the latest understanding of current-driven DW motion in ultrathin Pt/Co/Pt system and trigger further researches about the asymmetric field-driven DW motion and engineering DMI and STT in various materials.
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dc.description.tableofcontentsAbstract
List of Figures
List of Tables
1. Introduction
1.1 Field-driven domain-wall motion
1.1.1 DW creep in a disordered medium
1.1.2 DW energy density and creep
1.2 Spin-transfer torque
1.3 Spin-orbit torque
1.4 Dzyaloshinskii-Moriya interaction and chiral DWs
2 Development of scanning magneto-optical Kerr effect microscope
2.1 Setup and specification of scanning MOKE microscope
2.2 Modifications and performances of the scanning MOKE microscope
2.2.1 In-plane magnet setup
2.2.2 Low temperature MOKE microscope
2.2.3 DW velocity measurement
2.2.4 Short current pulse injection system
3 Observation of the symmetry-breaking in field-driven DW motion and determination of Dzyaloshinskii-Moriya interaction
3.1 Introduction
3.2 Experimental details
3.3 Observation of asymmetric field-driven DW motion
3.4 DW energy modification by in-plane field and DMI
3.5 Presence of DMI in Pt/Co/Pt films
3.6 Conclusion
3.7 Validity check of the DMI-induced effective field measurement
4 Spin-transfer torque and spin-orbit torque driven dynamics of chiral DWs
4.1 Introduction
4.2 Determination of spin-orbit torque in Pt/Co/Pt samples
4.3 Determination of DW chirality
4.4 SOT-based prediction of DW motion direction
4.5 Observation of Negative STT
4.6 Origin of the considerable nonadiabatic STT
4.7 Supplementary information and conclusion
4.7.1 Sample preparation
4.7.2 Details of methods
4.7.3 Estimation of DW width by measuring H_S
4.7.4 Estimation of the spin diffusion length and the spin-Hall angle of Pt
4.7.5 Conclusion
5 Extrinsic Transition of DW Growth Pattern
5.1 Introduction
5.2 Experiment
5.3 Wire width dependent transition of domain growth pattern
5.4 Conclusion
6 Outlook
References
Abstract in Korean
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dc.format.extent93-
dc.language.isoeng-
dc.publisher서울대학교 대학원-
dc.subjectdomain-wall motion, Dzyaloshinskii-Moriya interaction, spin-orbit torque-
dc.subject.ddc523-
dc.titleSpin-Transfer Torque and Spin-Orbit Torque Driven Dynamics of Chiral Domain-Walls-
dc.title.alternative스핀 전달 토크와 스핀 오비탈 토크에 의한 나사선 자구벽 운동-
dc.typeThesis-
dc.typeDissertation-
dc.contributor.AlternativeAuthorSoong-Geun Je-
dc.contributor.department자연과학대학 물리·천문학부-
dc.description.degreeDoctor-
dc.date.awarded2015-02-
dc.identifier.holdings000000000021▲000000000023▲000000025231▲-
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