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Wu, Mingxing; Chen, Taishi; Nomoto, Takuya; Tserkovnyak, Yaroslav; Isshiki, Hironari; Nakatani, Yoshinobu; Higo, Tomoya; Tomita, Takahiro; Kondou, Kouta; Arita, Ryotaro; et al (, Nature Communications)Abstract Antiferromagnets (AFMs) have the natural advantages of terahertz spin dynamics and negligible stray fields, thus appealing for use in domain-wall applications. However, their insensitive magneto-electric responses make controlling them in domain-wall devices challenging. Recent research on noncollinear chiral AFMs Mn3X (X = Sn, Ge) enabled us to detect and manipulate their magnetic octupole domain states. Here, we demonstrate a current-driven fast magnetic octupole domain-wall (MODW) motion in Mn3X. The magneto-optical Kerr observation reveals the Néel-like MODW of Mn3Ge can be accelerated up to 750 m s-1with a current density of only 7.56 × 1010A m-2without external magnetic fields. The MODWs show extremely high mobility with a small critical current density. We theoretically extend the spin-torque phenomenology for domain-wall dynamics from collinear to noncollinear magnetic systems. Our study opens a new route for antiferromagnetic domain-wall-based applications.more » « less
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Yang, Tsung-Han; Kawamoto, S.; Higo, Tomoya; Wang, SuYin Grass; Stone, M. B.; Neuefeind, Joerg; Ruff, Jacob P.; Abeykoon, A. M.; Chen, Yu-Sheng; Nakatsuji, S.; et al (, Physical Review Research)
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Kondou, Kouta; Chen, Hua; Tomita, Takahiro; Ikhlas, Muhammad; Higo, Tomoya; MacDonald, Allan H.; Nakatsuji, Satoru; Otani, YoshiChika (, Nature Communications)Abstract Spin-orbit torques (SOT) enable efficient electrical control of the magnetic state of ferromagnets, ferrimagnets and antiferromagnets. However, the conventional SOT has severe limitation that only in-plane spins accumulate near the surface, whether interpreted as a spin Hall effect (SHE) or as an Edelstein effect. Such a SOT is not suitable for controlling perpendicular magnetization, which would be more beneficial for realizing low-power-consumption memory devices. Here we report the observation of a giant magnetic-field-like SOT in a topological antiferromagnet Mn3Sn, whose direction and size can be tuned by changing the order parameter direction of the antiferromagnet. To understand the magnetic SHE (MSHE)- and the conventional SHE-induced SOTs on an equal footing, we formulate them as interface spin-electric-field responses and analyzed using a macroscopic symmetry analysis and a complementary microscopic quantum kinetic theory. In this framework, the large out-of-plane spin accumulation due to the MSHE has an inter-band origin and is likely to be caused by the large momentum-dependent spin splitting in Mn3Sn. Our work demonstrates the unique potential of antiferromagnetic Weyl semimetals in overcoming the limitations of conventional SOTs and in realizing low-power spintronics devices with new functionalities.more » « less
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