English

Spin-wave Confinement and Coupling in Organic-Based Magnetic Nanostructures

Materials Science 2019-11-28 v2 Mesoscale and Nanoscale Physics

Abstract

Vanadium tetracyanoethylene (V[TCNE]x_\text{x}) is an organic-based ferrimagnet that exhibits robust magnetic ordering (TC_\text{C} of over 600 K), high quality-factor (high-Q) microwave resonance (Q up to 3,500), and compatibility with a wide variety of substrates and encapsulation technologies. Here, we substantially expand the potential scope and impact of this emerging material by demonstrating the ability to produce engineered nanostructures with tailored magnetic anisotropy that serve as a platform for the exploration of cavity magnonics, revealing strongly coupled quantum confined standing wave modes that can be tuned into and out of resonance with an applied magnetic field. Specifically, time-domain micromagnetic simulations of these nanostructures faithfully reproduce the experimentally measured spectra, including the quasi-uniform mode and higher-order spin-wave (magnon) modes. Finally, when the two dominant magnon modes present in the spectra are brought into resonance by varying the orientation of the in-plane magnetic field, we observe anti-crossing behavior indicating strong coherent coupling between these two magnon modes at room temperature. These results position V[TCNE]x_\text{x} as a leading candidate for the development of coherent magnonics, with potential applications ranging from microwave electronics to quantum information.

Keywords

Cite

@article{arxiv.1901.03286,
  title  = {Spin-wave Confinement and Coupling in Organic-Based Magnetic Nanostructures},
  author = {Michael Chilcote and Megan Harberts and Bodo Fuhrman and Katrin Lehmann and Yu Lu and Andrew Franson and Howard Yu and Na Zhu and Hong Tang and Georg Schmidt and Ezekiel Johnston-Halperin},
  journal= {arXiv preprint arXiv:1901.03286},
  year   = {2019}
}

Comments

25 pages, 3 figures

R2 v1 2026-06-23T07:08:21.257Z