English

Spin-orbit interaction and spin selectivity for tunneling electron transfer in DNA

Mesoscale and Nanoscale Physics 2020-07-01 v2 Soft Condensed Matter

Abstract

Electron transfer (ET) in biological molecules such as peptides and proteins consists of electrons moving between well defined localized states (donors to acceptors) through a tunneling process. Here we present an analytical model for ET by tunneling in DNA, in the presence of Spin-Orbit (SO) interaction, to produce a strong spin asymmetry with the intrinsic atomic SO strength in meV range. We obtain a Hamiltonian consistent with charge transport through π\pi orbitals on the DNA bases and derive the behavior of ET as a function of the injection state momentum, the spin-orbit coupling and barrier length and strength. A highly consistent scenario arises where two concomitant mechanisms for spin selection arises; spin interference and differential spin amplitude decay. High spin filtering can take place at the cost of reduced amplitude transmission assuming realistic values for the spin-orbit coupling. The spin filtering scenario is completed by addressing the spin dependent torque under the barrier, with a consistent conserved definition for the spin current.

Keywords

Cite

@article{arxiv.2003.00582,
  title  = {Spin-orbit interaction and spin selectivity for tunneling electron transfer in DNA},
  author = {Solmar Varela and Iskra Zambrano and Bertrand Berche and Vladimiro Mujica and Ernesto Medina},
  journal= {arXiv preprint arXiv:2003.00582},
  year   = {2020}
}
R2 v1 2026-06-23T13:59:33.535Z