In situ electric-field control of ferromagnetic resonance in the low-loss organic-based ferrimagnet V[TCNE]x∼2

Author:

Kurfman Seth W.1ORCID,Franson Andrew1ORCID,Shah Piyush2ORCID,Shi Yueguang3ORCID,Cheung Hil Fung Harry4ORCID,Nygren Katherine E.5ORCID,Swyt Mitchell5ORCID,Buchanan Kristen S.5ORCID,Fuchs Gregory D.4ORCID,Flatté Michael E.36ORCID,Srinivasan Gopalan2ORCID,Page Michael2ORCID,Johnston-Halperin Ezekiel1ORCID

Affiliation:

1. Department of Physics, The Ohio State University 1 , Columbus, Ohio 43210, USA

2. Materials and Manufacturing Directorate, Air Force Research Laboratory 2 , Wright-Patterson AFB, Ohio 45433, USA

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

4. Department of Physics, Cornell University 4 , Ithaca, New York 14850, USA

5. Department of Physics, Colorado State University 5 , Fort Collins, Colorado 80523, USA

6. Department of Applied Physics, Eindhoven University of Technology 6 , Eindhoven, The Netherlands

Abstract

We demonstrate indirect electric-field control of ferromagnetic resonance (FMR) in devices that integrate the low-loss, molecule-based, room-temperature ferrimagnet vanadium tetracyanoethylene (V[TCNE]x∼2) mechanically coupled to PMN-PT piezoelectric transducers. Upon straining the V[TCNE]x films, the FMR frequency is tuned by more than 6 times the resonant linewidth with no change in Gilbert damping for samples with α = 6.5 × 10−5. We show this tuning effect is due to a strain-dependent magnetic anisotropy in the films and find the magnetoelastic coefficient |λs| ∼ (1–4.4) ppm, backed by theoretical predictions from density-functional theory calculations and magnetoelastic theory. Noting the rapidly expanding application space for strain-tuned FMR, we define a new metric for magnetostrictive materials, magnetostrictive agility, given by the ratio of the magnetoelastic coefficient to the FMR linewidth. This agility allows for a direct comparison between magnetostrictive materials in terms of their comparative efficacy for magnetoelectric applications requiring ultra-low loss magnetic resonance modulated by strain. With this metric, we show V[TCNE]x is competitive with other magnetostrictive materials, including YIG and Terfenol-D. This combination of ultra-narrow linewidth and magnetostriction, in a system that can be directly integrated into functional devices without requiring heterogeneous integration in a thin film geometry, promises unprecedented functionality for electric-field tuned microwave devices ranging from low-power, compact filters and circulators to emerging applications in quantum information science and technology.

Funder

National Science Foundation

Air Force Office of Scientific Research

Basic Energy Sciences

Publisher

AIP Publishing

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