Josephson current through a quantum dot coupled to a molecular magnet
arXiv:1304.8030 · doi:10.1103/PhysRevB.88.104512
Abstract
Josephson currents are carried by sharp Andreev states within the superconducting energy gap. We theoretically study the electronic transport of a magnetically tunable nanoscale junction consisting of a quantum dot connected to two superconducting leads and coupled to the spin of a molecular magnet. The exchange interaction between the molecular magnet and the quantum dot modifies the Andreev states due to a spin-dependent renormalization of the quantum dot's energy level and the induction of spin-flips. A magnetic field applied to the central region of the quantum dot and the molecular magnet further tunes the Josephson current and starts a precession of the molecular magnet's spin. We use a non-equilibrium Green's function approach to evaluate the transport properties of the junction. Our calculations reveal that the energy level of the dot, the magnetic field and the exchange interaction between the molecular magnet and the electrons occupying the energy level of the quantum dot can trigger transitions from a 0 to a state of the Josephson junction. The redistribution of the occupied states induced by the magnetic field strongly modifies the current-phase relation. The critical current exhibits a sharp increase as a function of either the energy level of the dot, the magnetic field or the exchange interaction.
10 pages, 7 figures
References in corpus (17)
- Will spin-relaxation times in molecular magnets permit quantum information processing?
- Supramolecular Spin Valves
- Supercurrent reversal in quantum dots
- Quantum supercurrent transistors in carbon nanotubes
- Electric Field Controlled Magnetic Anisotropy in a Single Molecule
- Josephson current through a single Anderson impurity coupled to BCS leads
- Tunneling Spectra of Individual Magnetic Endofullerene Molecules
- Spin dynamics in a superconductor / ferromagnet proximity system
- Kondo effect in asymmetric Josephson couplings through a quantum dot
- Fabrication of Nano-Gapped Single-Electron Transistors for Transport Studies of Individual Single-Molecule Magnets
- Controllable pi junction in a Josephson quantum-dot device with molecular spin
- Manipulation with Andreev states in spin active mesoscopic Josephson junctions
- Josephson Effect through an isotropic magnetic molecule
- Andreev Bound States in the Kondo Quantum Dots Coupled to Superconducting Leads
- Memristive properties of single-molecule magnets
- Transport and magnetization dynamics in a superconductor/single-molecule magnet/superconductor junction
- Spin-precession-assisted supercurrent in a superconducting quantum point contact coupled to a single-molecule magnet
Cited by in corpus (7)
- Phase diagram and excitations of a Shiba molecule
- Time-dependent spin and transport properties of a single-molecule magnet in a tunnel junction
- Engineering nonlinear response of nanomaterials using Fano resonances
- Enhancements of Andreev conductance induced by the photon/vibron scattering
- Andreev spectrum of a Josephson junction with spin-split superconductors
- Effect of uniaxial magnetic anisotropy on charge transport in a junction with a precessing anisotropic molecular spin
- Spin nutation effects in molecular nanomagnetsuperconductor tunnel junctions