English

A Piezoelectric, Strain-Controlled Antiferromagnetic Memory Insensitive to Magnetic Fields

Materials Science 2019-02-22 v1 Mesoscale and Nanoscale Physics Applied Physics

Abstract

Spintronic devices based on antiferromagnetic (AFM) materials hold the promise of fast switching speeds and robustness against magnetic fields. Different device concepts have been predicted and experimentally demonstrated, such as low-temperature AFM tunnel junctions that operate as spin-valves, or room-temperature AFM memory, for which either thermal heating in combination with magnetic fields, or N\'eel spin-orbit torque is used for the information writing process. On the other hand, piezoelectric materials were employed to control magnetism by electric fields in multiferroic heterostructures, which suppresses Joule heating caused by switching currents and may enable low energy-consuming electronic devices. Here, we combine the two material classes to explore changes of the resistance of the high-N\'eel-temperature antiferromagnet MnPt induced by piezoelectric strain. We find two non-volatile resistance states at room temperature and zero electric field, which are stable in magnetic fields up to 60 T. Furthermore, the strain-induced resistance switching process is insensitive to magnetic fields. Integration in a tunnel junction can further amplify the electroresistance. The tunneling anisotropic magnetoresistance reaches ~11.2% at room temperature. Overall, we demonstrate a piezoelectric, strain-controlled AFM memory which is fully operational in strong magnetic fields and has potential for low-energy and high-density memory applications.

Keywords

Cite

@article{arxiv.1901.03551,
  title  = {A Piezoelectric, Strain-Controlled Antiferromagnetic Memory Insensitive to Magnetic Fields},
  author = {Han Yan and Zexin Feng and Shunli Shang and Xiaoning Wang and Zexiang Hu and Jinhua Wang and Zengwei Zhu and Hui Wang and Zuhuang Chen and Hui Hua and Wenkuo Lu and Jingmin Wang and Peixin Qin and Huixin Guo and Xiaorong Zhou and Zhaoguogang Leng and Zikui Liu and Chengbao Jiang and Michael Coey and Zhiqi Liu},
  journal= {arXiv preprint arXiv:1901.03551},
  year   = {2019}
}

Comments

9 pages

R2 v1 2026-06-23T07:08:59.675Z