Optimal Single Quantum Dot Heat-to-pure-spin-current Converters
arXiv:1412.3706 · doi:10.1016/j.physb.2015.09.012
Abstract
We delve into the conditions under which a quantum dot thermoelectric setup may be tuned to realize an optimal heat-to-pure-spin-current converter. It is well known that a heat-to-pure-spin-current converter may be realized using a non-interacting quantum dot with a spin-split energy spectrum under particle hole symmetry conditions. However, with the inclusion of Coulomb interaction , ubiquitous in typical quantum dot systems, the relevant transport physics is expected to be altered. In this work, we provide a detailed picture of thermoelectric pure spin currents at various Coulomb interaction parameters and describe the conditions necessary for an exact cancellation of charge transport between energy levels and their Coulomb-charged partner levels , so as to yield the largest terminal pure spin currents. A non-trivial aspect pointed out here is that at sufficiently large values of (), pure spin currents tend to optimize at points other than where the particle-hole symmetry occurs. It is also ascertained that a global maximum of pure spin current is generated at a typical value of the interaction parameter . These optimum conditions may be easily realized using a typical gated quantum dot thermoelectric transport setup
8 pages, 5 figures in Physica B (2015)
References in corpus (13)
- Dissipationless Quantum Spin Current at Room Temperature
- Spin torque building blocks
- Non-collinear Magnetoelectronics
- Thermal Spin-Transfer Torques in Magnetoelectronic Devices
- Tunneling through molecules and quantum dots: master-equation approaches
- Thermo-spin effects in a quantum dot connected to ferromagnetic leads
- Rate equations for Coulomb blockade with ferromagnetic leads
- A Generic Model for Current Collapse in Spin Blockaded Transport
- Electrical generation of pure spin currents in a two-dimensional electron gas
- Spin Current and Current-Induced Spin Transfer Torque in Ferromagnet-Quantum Dot-Ferromagnet Coupled Systems
- Spin Seebeck power generators
- Transport through a double quantum dot system with non-collinearly polarized leads
- Spin and charge thermopower of resonant tunneling diodes