English

Enantiospecificity in NMR Enabled by Chirality-Induced Spin Selectivity

Soft Condensed Matter 2024-07-04 v2 Biological Physics Chemical Physics

Abstract

Spin polarization in chiral molecules is a magnetic molecular response associated with electron transport and enantioselective bond polarization that occurs even in the absence of an external magnetic field. An unexpected finding by Santos and co-workers reported enantiospecific NMR responses in solid-state cross-polarization (CP) experiments, suggesting a possible additional contribution to the indirect nuclear spin-spin coupling in chiral molecules induced by bond polarization in the presence of spin-orbit coupling. Herein we provide a theoretical treatment for this phenomenon, presenting an effective spin-Hamiltonian for helical molecules like DNA and density functional theory (DFT) results on amino acids that confirm the dependence of J-couplings on the choice of enantiomer. The connection between nuclear spin dynamics and chirality could offer insights for molecular sensing and quantum information sciences. These results establish NMR as a potential tool for chiral discrimination without external agents.

Keywords

Cite

@article{arxiv.2407.00861,
  title  = {Enantiospecificity in NMR Enabled by Chirality-Induced Spin Selectivity},
  author = {T. Georgiou and J. L. Palma and V. Mujica and S. Varela and M. Galante and V. Santamarıa Garcıa and L. Mboning and R. N. Schwartz and G. Cuniberti and L. -S. Bouchard},
  journal= {arXiv preprint arXiv:2407.00861},
  year   = {2024}
}

Comments

102 pages, 16 figures, 40 tables

R2 v1 2026-06-28T17:24:17.298Z