Direct electrical access to the spin manifolds of individual monovalent lanthanide atoms
arXiv:2408.11335 · doi:10.1021/acsnano.4c14327
Abstract
Lanthanide atoms show long magnetic lifetimes because of their strongly localized 4f electrons, but electrical control of their spins has been difficult because of their closed valence shell configurations. We achieved electron spin resonance of individual lanthanide atoms using a scanning tunneling microscope to probe the atoms bound to a protective insulating film. These atoms were prepared in the monovalent state with an unpaired 6s electron, enabling tunnel current to access their 4f electrons. Europium spectra display a rich array of transitions among the 54 combined electron and nuclear spin states. In contrast, samarium's ground state is a Kramers doublet with an extraordinarily large g-factor of nearly 5. These results demonstrate that all-electronic sensing and control of individual lanthanide spins is possible for quantum devices and spin-based electronics by using their rarely-observed monovalent cation state.
63 pages, 5 main text figures, 15 supplementary information figures
References in corpus (12)
- Qudits and high-dimensional quantum computing
- Reading and Writing Single-Atom Magnets
- Coherent properties of single rare-earth spin qubits
- Rare-Earth Molecular Crystals with Ultra-narrow Optical Linewidths for Photonic Quantum Technologies
- Engineering the eigenstates of coupled spin-1/2 atoms on a surface
- Three addressable spin qubits in a molecular single-ion magnet
- Quantifying the interplay between fine structure and geometry of an individual molecule on a surface
- Spatially Resolving Electron Spin Resonance of -Radical in Single-molecule Magnet
- Electron paramagnetic resonance of alkali metal atoms and dimers on ultrathin MgO
- Construction of topological quantum magnets from atomic spins on surfaces
- Electric Control of Spin Transitions at the Atomic Scale
- Anisotropic hyperfine interaction of surface-adsorbed single atoms