Magnonic active ring co-processor

Author:

Balynsky Mykhaylo1ORCID,Khivintsev Yuri2ORCID,Kozhevnikov Alexander2ORCID,Nikulin Yuri2,Sakharov Valentin2ORCID,Filimonov Yuri23ORCID,Khitun Alexander1ORCID

Affiliation:

1. Department of Electrical and Computer Engineering, University of California—Riverside 1 , Riverside 92521, California, USA

2. Kotelnikov Institute of Radioengineering and Electronics of the Russian Academy of Sciences 2 , Saratov 410019, Russia

3. Saratov State University 3 Physical and Mathematical Sciences, , Saratov 410019, Russia

Abstract

In this work, we consider the possibility of building a magnonic co-processor for special task data processing. Its principle of operation is based on the natural property of an active ring circuit to self-adjust to the resonant frequency. The co-processor comprises a multi-path active ring circuit where the magnetic part is a mesh of magnonic waveguides. Each waveguide acts as a phase shifter and a frequency filter at the same time. Being connected to the external electric part, the system naturally searches for the path which matches the phase of the electric part. This property can be utilized for solving a variety of mathematical problems including prime factorization, bridges of the Konigsberg problem, traveling salesman, etc. We also present experimental data on the proof-of-the-concept experiment demonstrating the spin wave signal re-routing inside a magnonic matrix depending on the position of the electric phase shifter. The magnetic part is a 3 × 3 matrix of waveguides made of single-crystal yttrium iron garnet Y3Fe2(FeO4)3 films. The results demonstrate a prominent change in the output power at different ports depending on the position of the electric phase shifter. The described magnonic co-processor is robust, deterministic, and operates at room temperature. The ability to exploit the unique physical properties inherent in spin waves and classical wave superposition may be translated into a huge functional throughput that may exceed 1060 operations per meter squared per second for 50×50 magnetic mesh. Physical limits and constraints are also discussed.

Funder

Intel Corporation

National Science Foundation

Ministry of Education and Science of the Russian Federation

Publisher

AIP Publishing

Subject

General Physics and Astronomy

Reference36 articles.

1. A review of internet of things-resource allocation;IEEE Internet Things J.,2021

2. Cramming more components onto integrated circuits;Electronics,1965

3. CMOS scaling trends and beyond;IEEE Micro,2017

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1. Magnonic combinatorial memory;npj Spintronics;2024-02-14

2. Electric Field Control of Chiral Magnonic Resonators for Spin-Wave Manipulation;Physical Review Applied;2023-09-12

3. Recent advances in magnonics;Journal of Applied Physics;2023-04-26

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