Octupole-driven magnetoresistance in an antiferromagnetic tunnel junction

Author:

Chen Xianzhe,Higo TomoyaORCID,Tanaka Katsuhiro,Nomoto TakuyaORCID,Tsai Hanshen,Idzuchi Hiroshi,Shiga MasanobuORCID,Sakamoto ShoyaORCID,Ando Ryoya,Kosaki Hidetoshi,Matsuo TakumiORCID,Nishio-Hamane Daisuke,Arita RyotaroORCID,Miwa ShinjiORCID,Nakatsuji SatoruORCID

Abstract

AbstractThe tunnelling electric current passing through a magnetic tunnel junction (MTJ) is strongly dependent on the relative orientation of magnetizations in ferromagnetic electrodes sandwiching an insulating barrier, rendering efficient readout of spintronics devices1–5. Thus, tunnelling magnetoresistance (TMR) is considered to be proportional to spin polarization at the interface1 and, to date, has been studied primarily in ferromagnets. Here we report observation of TMR in an all-antiferromagnetic tunnel junction consisting of Mn3Sn/MgO/Mn3Sn (ref. 6). We measured a TMR ratio of around 2% at room temperature, which arises between the parallel and antiparallel configurations of the cluster magnetic octupoles in the chiral antiferromagnetic state. Moreover, we carried out measurements using a Fe/MgO/Mn3Sn MTJ and show that the sign and direction of anisotropic longitudinal spin-polarized current in the antiferromagnet7 can be controlled by octupole direction. Strikingly, the TMR ratio (about 2%) of the all-antiferromagnetic MTJ is much larger than that estimated using the observed spin polarization. Theoretically, we found that the chiral antiferromagnetic MTJ may produce a substantially large TMR ratio as a result of the time-reversal, symmetry-breaking polarization characteristic of cluster magnetic octupoles. Our work lays the foundation for the development of ultrafast and efficient spintronic devices using antiferromagnets8–10.

Publisher

Springer Science and Business Media LLC

Subject

Multidisciplinary

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