Exploring a quantum-information-relevant magnonic material: Ultralow damping at low temperature in the organic ferrimagnet V[TCNE]x
Huma Yusuf (1), Michael Chilcote (1,2), Denis R. Candido (3), Seth W., Kurfman (1), Donley S. Cormode (1), Yu Lu (1), Michael E. Flatt\'e (3),, Ezekiel Johnston-Halperin (1) ((1) The Ohio State University, (2) Cornell, University, (3) University of Iowa)

TL;DR
This study investigates the low-temperature magnetization dynamics of V[TCNE]x thin films, revealing strain-dependent anisotropy and linewidth recovery, with implications for quantum information applications due to ultra-low damping.
Contribution
It provides the first comprehensive analysis of low-temperature magnetic properties of V[TCNE]x, highlighting its potential for quantum systems due to low damping and tunable anisotropy.
Findings
Magnetic resonance linewidth recovers to ~2 G at 5 K.
Temperature-driven strain affects magnetic anisotropy.
Linewidth variations explained by scattering from dilute paramagnetic impurities.
Abstract
Quantum information science and engineering requires novel low-loss magnetic materials for magnon-based quantum-coherent operations. The search for low-loss magnetic materials, traditionally driven by applications in microwave electronics near room-temperature, has gained additional constraints from the need to operate at cryogenic temperatures for many applications in quantum information science and technology. Whereas yttrium iron garnet (YIG) has been the material of choice for decades, the emergence of molecule-based materials with robust magnetism and ultra-low damping has opened new avenues for exploration. Specifically, thin-films of vanadium tetracyanoethylene (V[TCNE]x) can be patterned into the multiple, connected structures needed for hybrid quantum elements and have shown room-temperature Gilbert damping ({\alpha} = 4 \times 10^-5) that rivals the intrinsic (bulk) damping…
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Taxonomy
TopicsMechanical and Optical Resonators · Magneto-Optical Properties and Applications · Molecular Junctions and Nanostructures
