4.8 Article

Optical Creation of Skyrmions by Spin Reorientation Transition in Ferrimagnetic CoHo Alloys

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 -, 期 -, 页码 5608-5619

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.2c194115608

关键词

ultrafast magnetism; magnetic skyrmions; spintronics; time-resolved techniques; magnetic phase transitions

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This study demonstrates that the laser-magnetic phase transition process induced by femtosecond laser pulses can be mediated by the transient inplane magnetization state, resulting in the formation of topological skyrmions in real time and space domains. By combining experiments and micromagnetic simulations, a two-step process for creating skyrmions through laser pulse irradiation is proposed.
Manipulating magnetic skyrmions by means of a femtosecond (fs) laser pulse has attracted great interest due to their promising applications in efficient information-storage devices with ultralow energy consumption. However, the mechanism underlying the creation of skyrmions induced by an fs laser is still lacking. As a result, a key challenge is to reveal the pathway for the massive reorientation of magnetization from trivial to nontrivial topological states. Here, we studied a series of ferrimagnetic CoHo alloys and investigated the effect of a single laser pulse on the magnetic states. Thanks to the time-resolved magneto-optical Kerr effect and imaging techniques, we demonstrate that the laser-induced phase transitions from single domains into a topological skyrmion phase are mediated by the transient inplane magnetization state, in real time and space domains, respectively. Combining experiments and micromagnetic simulations, we propose a two-step process for creating skyrmions through laser pulse irradiation: (i) the electron temperature enhancement induces a spin reorientation transition on a picosecond (ps) timescale due to the suppression of perpendicular magnetic anisotropy (PMA) and (ii) the PMA slowly restores, accompanied by out-of-plane magnetization recovery, leading to the generation of skyrmions with the help of spin fluctuations. This work provides a route to control skyrmion patterns using an fs laser, thereby establishing the foundation for further exploration of topological magnetism at ultrafast timescales.

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