Bulletin of the American Physical Society
APS March Meeting 2020
Volume 65, Number 1
Monday–Friday, March 2–6, 2020; Denver, Colorado
Session G42: Spin Textures and Chiral Magnetism in 2D Materials
11:15 AM–2:15 PM,
Tuesday, March 3, 2020
Room: 709/711
Sponsoring
Units:
GMAG DMP
Chair: Hongxin Yang, Chinese Academy of Sciences
Abstract: G42.00010 : Chirally coupled nanomagnets
View Presentation Abstract
Presenter:
Zhaochu Luo
(Paul Scherrer Institute - ETHZ)
Authors:
Zhaochu Luo
(Paul Scherrer Institute - ETHZ)
Trong Phuong Dao
(ETHZ)
Aleš Hrabec
(Paul Scherrer Institute - ETHZ)
Jaianth Vijayakumar
(Paul Scherrer Institute)
Armin Kleibert
(Paul Scherrer Institute)
Manuel Baumgartner
(ETHZ)
Eugenie Kirk
(Paul Scherrer Institute - ETHZ)
Jizhai Cui
(Paul Scherrer Institute - ETHZ)
Tatiana Savchenko
(Paul Scherrer Institute)
Gunasheel Krishnaswamy
(ETHZ)
Laura J Heyderman
(Paul Scherrer Institute - ETHZ)
Pietro Gambardella
(ETHZ)
In this work, we demonstrate an alternative method to control the lateral coupling between adjacent magnetic nanostructures [3] based on the interfacial Dzyaloshinskii-Moriya interaction (DMI). In particular, we have patterned regions with in-plane (IP) and out-of-plane (OOP) magnetic anisotropy in a magnetic element using selective oxidation of Pt/Co/Al films, and the magnetization in the OOP and IP parts of the islands are chirally coupled via DMI arising from the Pt underlayer, giving either ↓→ or ↑← configurations.
We have exploited this concept for various applications. For example, we have created stable synthetic lateral antiferromagnets, skyrmions with different numbers of IP rings and artificial spin ices based on a square lattice and kagome lattice. In addition, we have demonstrated field-free current-induced switching between multistate magnetic configurations in the chirally coupled thin-film nanomagnets via spin-orbit torques. Our work therefore provides a platform to design tailor-made arrays of correlated nanomagnets with a future perspective to achieve all-electric control of planar logic gates and memory devices.
[1] H. Arava, et al. Nanotechnology 29, 265205 (2018).
[2] L. Heyderman and R. Stamps, J. Phys.: Condens. Matter 25, 363201 (2013).
[3] Z. Luo, et al. Science 363, 1435 (2019).
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