TY - JOUR
T1 - All-Optical Helicity-Dependent Switching in Hybrid Metal–Ferromagnet Thin Films
AU - Cheng, Feng
AU - Du, Zhidong
AU - Wang, Xinjun
AU - Cai, Ziqiang
AU - Li, Lin
AU - Wang, Chuangtang
AU - Benabbas, Abdelkrim
AU - Champion, Paul
AU - Sun, Nianxiang
AU - Pan, Liang
AU - Liu, Yongmin
N1 - Publisher Copyright:
© 2020 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2020/7/1
Y1 - 2020/7/1
N2 - Over the past decades, optical manipulation of magnetization by ultrafast laser pulses has attracted extensive interest. It not only shows intriguing fundamental science arising from the interactions between spins, electrons, phonons, and photons, but also manifests the potential to process and store data at a speed that is three orders of magnitude faster than the current technologies. In this paper, all-optical helicity-dependent switching (AO-HDS) in hybrid metal–ferromagnet thin films, which consist of Co/Pt multilayers with perpendicular magnetic anisotropy and an Au film capping layer on the top, is experimentally demonstrated. The switching behaviors of the hybrid Co/Pt–Au material, with various laser repetition rates, scanning speeds, and fluencies, are systematically studied. In comparison with bare Co/Pt multilayers, the hybrid metal–ferromagnet thin films show pronounced AO-HDS when the number of laser pulses per μm along the scanning direction gradually increases. In addition, the AO-HDS effect is very robust against laser fluences. A possible mechanism is further proposed based on numerical simulations of the optomagnetic coupling model. These findings promise a new material system that exhibits stable AO-HDS phenomena, and hence can transform future magnetic storage devices, especially with the addition of plasmonic nanostructures made of noble metals.
AB - Over the past decades, optical manipulation of magnetization by ultrafast laser pulses has attracted extensive interest. It not only shows intriguing fundamental science arising from the interactions between spins, electrons, phonons, and photons, but also manifests the potential to process and store data at a speed that is three orders of magnitude faster than the current technologies. In this paper, all-optical helicity-dependent switching (AO-HDS) in hybrid metal–ferromagnet thin films, which consist of Co/Pt multilayers with perpendicular magnetic anisotropy and an Au film capping layer on the top, is experimentally demonstrated. The switching behaviors of the hybrid Co/Pt–Au material, with various laser repetition rates, scanning speeds, and fluencies, are systematically studied. In comparison with bare Co/Pt multilayers, the hybrid metal–ferromagnet thin films show pronounced AO-HDS when the number of laser pulses per μm along the scanning direction gradually increases. In addition, the AO-HDS effect is very robust against laser fluences. A possible mechanism is further proposed based on numerical simulations of the optomagnetic coupling model. These findings promise a new material system that exhibits stable AO-HDS phenomena, and hence can transform future magnetic storage devices, especially with the addition of plasmonic nanostructures made of noble metals.
KW - all-optical switching
KW - data storage
KW - helicity
KW - laser pulses
KW - magnetic materials
KW - ultrafast
UR - https://www.scopus.com/pages/publications/85085114593
U2 - 10.1002/adom.202000379
DO - 10.1002/adom.202000379
M3 - 文章
AN - SCOPUS:85085114593
SN - 2195-1071
VL - 8
JO - Advanced Optical Materials
JF - Advanced Optical Materials
IS - 13
M1 - 2000379
ER -