English

Spin-orbit coupling and transport of strongly correlated two-dimensional systems

Strongly Correlated Electrons 2017-06-02 v1

Abstract

Measuring the magnetoresistance (MR) of ultraclean {\it GaAs} two-dimensional holes in a large rsr_s range of 20-50, two striking behaviors in relation to the spin-orbit coupling (SOC) emerge in response to strong electron-electron interaction. First, in exact correspondence to the zero-field metal-to-insulator transition (MIT), the sign of the MR switches from being positive in the metallic regime to being negative in the insulating regime when the carrier density crosses the critical density pcp_c of MIT (rs39r_s\sim 39). Second, as the SOC-driven correction Δρ\Delta\rho to the MR decreases with reducing carrier density (or the in-plane wave vector), it exhibits an upturn in the close proximity just above pcp_c where rsr_s is beyond 30, indicating a substantially enhanced SOC effect. This peculiar behavior echoes with a trend of delocalization long suspected for the SOC-interaction interplay. Meanwhile, for p<pcp<p_c or rs>40r_s>40, in contrast to the common belief that a magnet field enhances Wigner crystallization, the negative MR is likely linked to enhanced interaction.

Keywords

Cite

@article{arxiv.1706.00297,
  title  = {Spin-orbit coupling and transport of strongly correlated two-dimensional systems},
  author = {Jian Huang and L. N. Pfeiffer and K. W. West},
  journal= {arXiv preprint arXiv:1706.00297},
  year   = {2017}
}