The 2024 magnonics roadmap

Author:

Flebus BenedettaORCID,Grundler DirkORCID,Rana BivasORCID,Otani YoshiChikaORCID,Barsukov IgorORCID,Barman AnjanORCID,Gubbiotti GianlucaORCID,Landeros PedroORCID,Akerman JohanORCID,Ebels Ursula,Pirro PhilippORCID,Demidov Vladislav E,Schultheiss Katrin,Csaba Gyorgy,Wang QiORCID,Ciubotaru FlorinORCID,Nikonov Dmitri E,Che PingORCID,Hertel RiccardoORCID,Ono TeruoORCID,Afanasiev Dmytro,Mentink Johan,Rasing Theo,Hillebrands BurkardORCID,Kusminskiy Silvia ViolaORCID,Zhang Wei,Du Chunhui RitaORCID,Finco AuroreORCID,van der Sar ToenoORCID,Luo Yunqiu KellyORCID,Shiota YoichiORCID,Sklenar JosephORCID,Yu Tao,Rao Jinwei

Abstract

Abstract Magnonics is a research field that has gained an increasing interest in both the fundamental and applied sciences in recent years. This field aims to explore and functionalize collective spin excitations in magnetically ordered materials for modern information technologies, sensing applications and advanced computational schemes. Spin waves, also known as magnons, carry spin angular momenta that allow for the transmission, storage and processing of information without moving charges. In integrated circuits, magnons enable on-chip data processing at ultrahigh frequencies without the Joule heating, which currently limits clock frequencies in conventional data processors to a few GHz. Recent developments in the field indicate that functional magnonic building blocks for in-memory computation, neural networks and Ising machines are within reach. At the same time, the miniaturization of magnonic circuits advances continuously as the synergy of materials science, electrical engineering and nanotechnology allows for novel on-chip excitation and detection schemes. Such circuits can already enable magnon wavelengths of 50 nm at microwave frequencies in a 5G frequency band. Research into non-charge-based technologies is urgently needed in view of the rapid growth of machine learning and artificial intelligence applications, which consume substantial energy when implemented on conventional data processing units. In its first part, the 2024 Magnonics Roadmap provides an update on the recent developments and achievements in the field of nano-magnonics while defining its future avenues and challenges. In its second part, the Roadmap addresses the rapidly growing research endeavors on hybrid structures and magnonics-enabled quantum engineering. We anticipate that these directions will continue to attract researchers to the field and, in addition to showcasing intriguing science, will enable unprecedented functionalities that enhance the efficiency of alternative information technologies and computational schemes.

Funder

CRC

Deutsche Forschungsgemeinschaft

CREST

JST

JSPS

SNSF

PRIN

Italian Ministry

Air Force Office of Scientific Research

CAREER

ERC

European Union

Basal Program for Centers of Excellence

FONDECYT

EU

DFG, German Research Foundation

Department of Science and Technology, Govt. of India

National Science Foundation

Shell

Programme d’Investissement d’Avenir

NWO/FOM

NWO

the JST, CREST

ITI

INSERM

JJST

University of Strasbourg

Shanghai Pujiang Program

Ministerie van Onderwijs, Cultuur en Wetenschap

KAKENHI

Dutch Science Council

Shell and Chemical Sciences, Earth

DFG

Horizon2020 Research Framework Programme of the European Commission

FOM

National Natural Science Foundation of China

Interdisciplinary Thematic Institute

CNRS

Huazhong University of Science and Technology

Publisher

IOP Publishing

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