| Literature DB >> 30112694 |
Dong Li1,2, Baoshan Cui1, Jijun Yun1, Minzhang Chen1, Xiaobin Guo1, Kai Wu1, Xu Zhang1, Yupei Wang1, Jian Mao1, Yalu Zuo1, Jianbo Wang1, Li Xi3.
Abstract
The influence of C insertion on Dzyaloshinskii-Moriya interaction (DMI) as well as current-induced domain wall (DW) motion (CIDWM) and tilting in Pt/Co/Ta racetracks is investigated via a magneto-optical Kerr microscope. The similar DMI strength for Pt/Co/Ta and Pt/Co/C/Ta samples reveals that DMI mainly comes from the Pt/Co interface. Fast DW velocity around tens of m/s with current density around several MA/cm2 is observed in Pt/Co/Ta. However, it needs double times larger current density to reach the same magnitude in Pt/Co/C/Ta, indicating DW velocity is related to the spin-orbit torque efficiency and pinning potential barrier. Moreover, in CIDWM, DW velocity is around 103 times larger than that in field-induced DW motion (FIDWM) with current-generated effective field keeping the same magnitude as applied magnetic field, revealing that the current-generated Joule heating has an influence on DW motion. Interestingly, current-induced DW tilting phenomenon is observed, while this phenomenon is absent in FIDWM, demonstrating that the current-generated Oersted field may also play an essential role in DW tilting. These findings could provide some designing prospects to drive DW motion in SOT-based racetrack memories.Entities:
Keywords: Domain wall motion; Domain wall tilting; Dzyaloshinskii-Moriya interaction; Perpendicular magnetic anisotropy; Spin-orbit torque
Year: 2018 PMID: 30112694 PMCID: PMC6093834 DOI: 10.1186/s11671-018-2655-6
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1DW velocity as a function of out-of-plane field H for Pt/Co/Ta (a) and Pt/Co/C/Ta (b). The insets in a and b represent the snapshots of domains at different fields to show the DW shape
Fig. 2DW velocity against current density for Pt/Co/Ta (a) and Pt/Co/C/Ta (b). The insets in a and b represent the snapshots of the domain shape at the representative current density
Fig. 3(a) Kerr images give the definition of DW tilt angle (ψ) and changes of ψ at different current densities from “up” to “down” state and “down” to “up” state, taking the Pt/Co/Ta sample as an example. DW tilt angle versus current density for Pt/Co/Ta (b) and Pt/Co/C/Ta (c). The insets in b and c represent the snapshots of the domain shape at different current densities
Fig. 4Schematic DW motion and domain shapes at a current density J. The left upper panel shows the domain with U-D-U-D sketches and the magnetization orientation (thin black arrow) in domain and DWs. Once a current applied, the generated H acting on the DWs are shown as red thick arrows, while the Oersted fields (H) at both sides of the racetrack are shown as dash blue arrows. The left lower panel shows the corresponding change of the domain shape (denoted as dash thick black blocks) under the action of H and H. The right panel shows the effect of in-plane magnetic fields on the domain shape for Pt/Co/Ta