The 83rd JSAP Autumn Meeting 2022

Presentation information

Oral presentation

10 Spintronics and Magnetics » 10.4 Spintronics in semiconductor, topological material, superconductor, and multiferroics

[23a-B201-1~12] 10.4 Spintronics in semiconductor, topological material, superconductor, and multiferroics

Fri. Sep 23, 2022 9:00 AM - 12:15 PM B201 (B201)

Hiroshi Naganuma(Tohoku Univ.), Mitsuharu Uemoto(Kobe Univ.)

11:30 AM - 11:45 AM

[23a-B201-10] Perpendicular and 100% switching of noncollinear antiferromagnetic order in the chiral antiferromagnet Mn3Sn by electric current

Tomoya Higo1,2,3, Kouta Kondou3,4, Takuya Nomoto5,6, Masanobu Shiga2, Shoya Sakamoto2, Xianzhe Chen2, Daisuke Nishio-Hamane2, Ryotaro Arita3,4,5, Yoshichika Otani2,3,4,7, Shinji Miwa2,3,7, Satoru Nakatsuji1,2,3,7,8 (1.Dept. of Phys., UTokyo, 2.ISSP, UTokyo, 3.JST CREST, 4.RIKEN CEMS, 5.RCAST, UTokyo, 6.JST PREST, 7.TSQSI, UTokyo, 8.Johns Hopkins Univ.)

Keywords:Weyl semimetal, Antiferromagnetic spintronics, Spin-orbit torque

Electrical control of a magnetic state lays the foundation for information technologies. Spin–orbit torque (SOT) provides an efficient mechanism for the electrical manipulation of magnetic orders. In particular, SOT switching of perpendicular magnetization in nanoscale ferromagnetic bits has enabled the development of stable, reliable and low-power memories and computation. Likewise, for antiferromagnetic (AF) spintronics, electrical bidirectional switching of an AF order in a perpendicular geometry may have huge impacts, given its potential advantage for high-density integration and ultrafast operation. Here we report the experimental realization of perpendicular and full SOT switching of an AF binary state in the chiral antiferromagnet Mn3Sn.