The role of rare-earth atoms in the anisotropy and antiferromagnetic exchange coupling at a hybrid metal-organic interface
arXiv:2403.15774 · doi:10.1002/smll.202402328
Abstract
Magnetic anisotropy and magnetic exchange interactions are crucial parameters that characterize the hybrid metal-organic interface, key component of an organic spintronic device. We show that the incorporation of 4 RE atoms to hybrid metal-organic interfaces of CuPc/REAu type (RE= Gd, Ho) constitutes a feasible approach towards on-demand magnetic properties and functionalities. The GdAu and HoAu substrates differ in their magnetic anisotropy behavior. Remarkably, the HoAu surface boosts the inherent out-of-plane anisotropy of CuPc, owing to the match between the anisotropy axis of substrate and molecule. Furthermore, the presence of RE atoms leads to a spontaneous antiferromagnetic (AFM) exchange coupling at the interface, induced by the 3-4 superexchange interaction between the unpaired 3 electron of CuPc and the 4 electrons of the RE atoms. We show that 4 RE atoms with unquenched quantum orbital momentum (), as it is the case of Ho, induce an anisotropic interfacial exchange coupling.
Main paper: 10 pages and 3 figures; Supplementary Material: 13 pages, 5 figures
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