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Chirality-Dependent Electron Spin Filtering by Molecular Monolayers of Helicenes
Author(s) -
Matthias Kettner,
Volodymyr V. Maslyuk,
Daniel Nürenberg,
Johannes Seibel,
Rafael Gutiérrez,
Gianaurelio Cuniberti,
KarlHeinz Ernst,
H. Zacharias
Publication year - 2018
Publication title -
the journal of physical chemistry letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.563
H-Index - 203
ISSN - 1948-7185
DOI - 10.1021/acs.jpclett.8b00208
Subject(s) - density functional theory , spin polarization , molecule , molecular physics , electron , semiclassical physics , chemistry , condensed matter physics , atomic physics , physics , computational chemistry , quantum mechanics , organic chemistry , quantum
The interaction of low-energy photoelectrons with well-ordered monolayers of enantiopure helical heptahelicene molecules adsorbed on metal surfaces leads to a preferential transmission of one longitudinally polarized spin component, which is strongly coupled to the helical sense of the molecules. Heptahelicene, composed of only carbon and hydrogen atoms, exhibits only a single helical turn but shows excess in longitudinal spin polarization of about P Z = 6 to 8% after transmission of initially balanced left- and right-handed spin polarized electrons. Insight into the electronic structure, that is, the projected density of states, and the spin-dependent electron scattering in the helicene molecule is gained by using spin-resolved density functional theory calculations and a model Hamiltonian approach, respectively. Our results support the semiclassical picture of electronic transport along a helical pathway under the influence of spin-orbit coupling induced by the electrostatic molecular potential.

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