Single‐Shot Laser‐Induced Switching of an Exchange Biased Antiferromagnet

Author:

Guo Zongxia12,Wang Junlin3,Malinowski Gregory2,Zhang Boyu1,Zhang Wei14,Wang Hangtian12,Lyu Chen12,Peng Yi2,Vallobra Pierre14,Xu Yong14,Xu Yongbing35,Jenkins Sarah5,Chantrell Roy W.5,Evans Richard F. L.5,Mangin Stéphane2,Zhao Weisheng14,Hehn Michel2ORCID

Affiliation:

1. Fert Beijing Institute, School of Integrated Science and Engineering Beihang University Beijing 100191 China

2. Institut Jean Lamour, UMR CNRS Université de Lorraine Nancy 54011 France

3. School of Integrated Circuits Guangdong University of Technology Guangdong 510006 China

4. Anhui High Reliability Chips Engineering Laboratory Hefei Innovation Research Institute Beihang University Hefei 230012 China

5. School of Physics Engineering and Technology University of York York YO105DD UK

Abstract

AbstractUltrafast manipulation of magnetic order has challenged the understanding of the fundamental and dynamic properties of magnetic materials. So far single‐shot magnetic switching has been limited to ferrimagnetic alloys, multilayers, and designed ferromagnetic (FM) heterostructures. In FM/antiferromagnetic (AFM) bilayers, exchange bias (He) arises from the interfacial exchange coupling between the two layers and reflects the microscopic orientation of the antiferromagnet. Here the possibility of single‐shot switching of the antiferromagnet (change of the sign and amplitude of He) with a single femtosecond laser pulse in IrMn/CoGd bilayers is demonstrated. The manipulation is demonstrated in a wide range of fluences for different layer thicknesses and compositions. Atomistic simulations predict ultrafast switching and recovery of the AFM magnetization on a timescale of 2 ps. The results provide the fastest and the most energy‐efficient method to set the exchange bias and pave the way to potential applications for ultrafast spintronic devices.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Project 211

China Postdoctoral Science Foundation

Agence Nationale de la Recherche

Publisher

Wiley

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