TY - JOUR
T1 - Room-Temperature Skyrmions in an Antiferromagnet-Based Heterostructure
AU - Yu, Guoqiang
AU - Jenkins, Alec
AU - Ma, Xin
AU - Razavi, Seyed Armin
AU - He, Congli
AU - Yin, Gen
AU - Shao, Qiming
AU - He, Qing Lin
AU - Wu, Hao
AU - Li, Wenjing
AU - Jiang, Wanjun
AU - Han, Xiufeng
AU - Li, Xiaoqin
AU - Bleszynski Jayich, Ania Claire
AU - Amiri, Pedram Khalili
AU - Wang, Kang L.
N1 - Publisher Copyright:
© 2017 American Chemical Society.
PY - 2018/2/14
Y1 - 2018/2/14
N2 - Magnetic skyrmions as swirling spin textures with a nontrivial topology have potential applications as magnetic memory and storage devices. Since the initial discovery of skyrmions in non-centrosymmetric B20 materials, the recent effort has focused on exploring room-temperature skyrmions in heavy metal and ferromagnetic heterostructures, a material platform compatible with existing spintronic manufacturing technology. Here, we report the surprising observation that a room-temperature skyrmion phase can be stabilized in an entirely different class of systems based on antiferromagnetic (AFM) metal and ferromagnetic (FM) metal IrMn/CoFeB heterostructures. There are a number of distinct advantages of exploring skyrmions in such heterostructures including zero-field stabilization, tunable antiferromagnetic order, and sizable spin-orbit torque (SOT) for energy-efficient current manipulation. Through direct spatial imaging of individual skyrmions, quantitative evaluation of the interfacial Dzyaloshinskii-Moriya interaction, and demonstration of current-driven skyrmion motion, our findings firmly establish the AFM/FM heterostructures as a promising material platform for exploring skyrmion physics and device applications.
AB - Magnetic skyrmions as swirling spin textures with a nontrivial topology have potential applications as magnetic memory and storage devices. Since the initial discovery of skyrmions in non-centrosymmetric B20 materials, the recent effort has focused on exploring room-temperature skyrmions in heavy metal and ferromagnetic heterostructures, a material platform compatible with existing spintronic manufacturing technology. Here, we report the surprising observation that a room-temperature skyrmion phase can be stabilized in an entirely different class of systems based on antiferromagnetic (AFM) metal and ferromagnetic (FM) metal IrMn/CoFeB heterostructures. There are a number of distinct advantages of exploring skyrmions in such heterostructures including zero-field stabilization, tunable antiferromagnetic order, and sizable spin-orbit torque (SOT) for energy-efficient current manipulation. Through direct spatial imaging of individual skyrmions, quantitative evaluation of the interfacial Dzyaloshinskii-Moriya interaction, and demonstration of current-driven skyrmion motion, our findings firmly establish the AFM/FM heterostructures as a promising material platform for exploring skyrmion physics and device applications.
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U2 - 10.1021/acs.nanolett.7b04400
DO - 10.1021/acs.nanolett.7b04400
M3 - Article
C2 - 29271208
AN - SCOPUS:85042126309
SN - 1530-6984
VL - 18
SP - 980
EP - 986
JO - Nano letters
JF - Nano letters
IS - 2
ER -