English

Optimal spin-charge interconversion in graphene through spin-pseudospin entanglement control

Mesoscale and Nanoscale Physics 2025-10-27 v1 Materials Science Computational Physics

Abstract

The electrical generation of spin signals is of central interest for spintronics, where graphene stands as a relevant platform as its spin-orbit coupling (SOC) is tuned by proximity effects. Here, we propose an enhancement of spin-charge interconversion in graphene by controlling the intraparticle entanglement between the spin and pseudospin degrees of freedom. We demonstrate that, although the spin alone is not conserved in Rashba-Dirac systems, a combined spin-pseudospin operator is conserved. This conserved quantity represents the interconversion between pure spin and pseudospin textures to a spin-pseudospin entangled structure, where Kane-Mele SOC tunes this balance. By these means, we achieve spin-charge interconversion of 100\% efficiency via the Rashba-Edelstein effect. Quantum transport simulations in disordered micron-size systems demonstrate the robustness of this effect, and also reveal a disorder resilient spin Hall effect generated by the interplay between Rashba and Kane-Mele SOC. Our findings propose a platform for maximally efficient spin-charge interconversion, and establish spin-pseudospin correlations as a mechanism to tailor spintronic devices.

Keywords

Cite

@article{arxiv.2510.21240,
  title  = {Optimal spin-charge interconversion in graphene through spin-pseudospin entanglement control},
  author = {Joaquín Medina Dueñas and Santiago Giménez de Castro and Jose H. Garcia and Stephan Roche},
  journal= {arXiv preprint arXiv:2510.21240},
  year   = {2025}
}
R2 v1 2026-07-01T07:03:34.414Z