English

Optimal Single Quantum Dot Heat-to-pure-spin-current Converters

Mesoscale and Nanoscale Physics 2015-09-17 v2

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 UU, 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 UU and describe the conditions necessary for an exact cancellation of charge transport between energy levels ϵ\epsilon and their Coulomb-charged partner levels ϵ+U\epsilon+U, so as to yield the largest terminal pure spin currents. A non-trivial aspect pointed out here is that at sufficiently large values of UU (U0\ge U_0), 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 UU. These optimum conditions may be easily realized using a typical gated quantum dot thermoelectric transport setup

Keywords

Cite

@article{arxiv.1412.3706,
  title  = {Optimal Single Quantum Dot Heat-to-pure-spin-current Converters},
  author = {Siddharth Buddhiraju and Bhaskaran Muralidharan},
  journal= {arXiv preprint arXiv:1412.3706},
  year   = {2015}
}

Comments

8 pages, 5 figures in Physica B (2015)

R2 v1 2026-06-22T07:28:02.713Z