Strong Photon‐Magnon Coupling Using a Lithographically Defined Organic Ferrimagnet

Author:

Xu Qin1,Cheung Hil Fung Harry1ORCID,Cormode Donley S.2,Puel Tharnier O.3ORCID,Pal Srishti4ORCID,Yusuf Huma2ORCID,Chilcote Michael4ORCID,Flatté Michael E.3ORCID,Johnston‐Halperin Ezekiel2ORCID,Fuchs Gregory D.4ORCID

Affiliation:

1. Department of Physics Cornell University Ithaca NY 14853 USA

2. Department of Physics The Ohio State University Columbus OH 43210 USA

3. Department of Physics and Astronomy University of Iowa Iowa City IA 52242 USA

4. School of Applied and Engineering Physics Cornell University Ithaca NY 14853 USA

Abstract

AbstractA cavity‐magnonic system composed of a superconducting microwave resonator coupled to a magnon mode hosted by the organic‐based ferrimagnet vanadium tetracyanoethylene (V[TCNE]x) is demonstrated. This work is motivated by the challenge of scalably integrating a low‐damping magnetic system with planar superconducting circuits. V[TCNE]x has ultra‐low intrinsic damping, can be grown at low processing temperatures on arbitrary substrates, and can be patterned via electron beam lithography. The devices operate in the strong coupling regime, with a cooperativity exceeding 1000 for coupling between the Kittel mode and the resonator mode at T≈0.4 K, suitable for scalable quantum circuit integration. Higher‐order magnon modes are also observed with much narrower linewidths than the Kittel mode. This work paves the way for high‐cooperativity hybrid quantum devices in which magnonic circuits can be designed and fabricated as easily as electrical wires.

Funder

Basic Energy Sciences

Energy Frontier Research Centers

National Nanotechnology Coordinating Office

Division of Materials Research

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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