Authors
Mahe Taiba Hussain, Subrata Majumder, Matej Komelj
Published in
The Journal of chemical physics. Volume 165. Issue 7. Aug 21, 2026.
Abstract
The electron spin represents an extra set of observables, and spin polarization has emerged as an important measurable for low-dimensional phenomena. Chirality-induced spin selectivity has emerged as a powerful strategy for generating spin-polarized currents without magnetic materials. Here, we demonstrate that controlled intercalation of chiral L-cysteine molecules into exfoliated MoS2 nanosheets at two different concentrations enables deformation-driven tuning of chirality and spin polarization. Notably, circular dichroism measurements show inversion of chiroptical response with molecular loading, which directly correlates with the sign and magnitude of spin polarization measured by using scanning tunneling spectroscopy. Density functional theory calculations reveal the structural-deformation dependence of the bandgap width and of the spin-orbit coupling splitting. The results establish a clear structure-chirality-spin relationship, where stacking-induced symmetry breaking governs spin-selective transport. This work provides a mechanistic framework for engineering chiral two-dimensional materials with tunable spin functionality for next-generation spintronic applications.
PMID:
42607182
Bibliographic data and abstract were imported from PubMed on 18 Aug 2026.
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