Electronic control and switching of entangled spin state using anisotropy and exchange in the three-particle paradigm
arXiv:2112.05223 · doi:10.1088/2399-6528/ac7e1d
Abstract
We explore the control and switching of the entangled spin states of multi-spin particle qubit coupled to an electron using a three-particle spin model described by (), in which is an electron and can have any spin with both exchange coupling and magnetic anisotropy. We derive a general formula for the existence of a switching (DJ) resonance for any spin . We further contrast the entanglement switching mechanisms for the and spin models. We find that while the onsite magnetic anisotropy in the case of allows full control of their spin states via interaction with , in order to achieve acceptable control of a Bloch vector within the model, additional mechanisms, such as anisotropic exchange coupling, are required.
References in corpus (8)
- Berry Phase Oscillations of the Kondo Effect in Single-Molecule Magnets
- Properties of anisotropic magnetic impurities on surfaces
- Kondo effect in single-molecule magnet transistors
- Quantum nondemolition measurement of an electron spin qubit
- Entanglement of Two Impurities through Electron Scattering
- Entanglement Controlled Single-Electron Transmittivity
- Tunable Single-Ion Anisotropy in Spin-1 Models Realized with Ultracold Atoms
- Anisotropy-Exchange Resonance as a Mechanism for Entangled State Switching