Magnon scattering modulated by omnidirectional hopfion motion in antiferromagnets for meta-learning

Author:

Zhang Zhizhong1ORCID,Lin Kelian1ORCID,Zhang Yue12ORCID,Bournel Arnaud3,Xia Ke4,Kläui Mathias5ORCID,Zhao Weisheng12ORCID

Affiliation:

1. Fert Beijing Research Institute, MIIT Key Laboratory of Spintronics, School of Integrated Circuit Science and Engineering, Beihang University, Beijing 100191, P. R. China.

2. Nanoelectronics Science and Technology Center, Hefei Innovation Research Institute, Beihang University, Hefei 230012, P. R. China.

3. Centre de Nanosciences et de Nanotechnologies, Université Paris-Saclay, 91120 Palaiseau, France.

4. School of Physics, Southeast University, Nanjing 211189, P. R. China.

5. Institute of Physics, Johannes Gutenberg University of Mainz, 55099 Mainz, Germany.

Abstract

Neuromorphic computing is expected to achieve human-brain performance by reproducing the structure of biological neural systems. However, previous neuromorphic designs based on synapse devices are all unsatisfying for their hardwired network structure and limited connection density, far from their biological counterpart, which has high connection density and the ability of meta-learning. Here, we propose a neural network based on magnon scattering modulated by an omnidirectional mobile hopfion in antiferromagnets. The states of neurons are encoded in the frequency distribution of magnons, and the connections between them are related to the frequency dependence of magnon scattering. Last, by controlling the hopfion’s state, we can modulate hyperparameters in our network and realize the first meta-learning device that is verified to be well functioning. It not only breaks the connection density bottleneck but also provides a guideline for future designs of neuromorphic devices.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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