Journal of the American Chemical Society · 2023 · 69 citations · 36 references
EngineeringTopological MaterialsMagnetic ResonanceTopological Quantum StateSpintronic MaterialMagnetic MaterialsTopological MagnetismMagnetismEfficient Spin FiltersMagnetic Topological InsulatorKnot-like StructuresQuantum SciencePhysicsHigh Spin PolarizationTopological MaterialTopological PhaseQuantum MagnetismSpintronicsMolecule-based MagnetChirality ResultsNatural SciencesTopological InsulatorApplied PhysicsCondensed Matter Physics
Knot-like structures were found to have interesting magnetic properties in condensed matter physics. Herein, we report on topologically chiral molecular knots as efficient spintronic chiral material. The discovery of the chiral-induced spin selectivity (CISS) effect opens the possibility of manipulating the spin orientation with soft materials at room temperature and eliminating the need for a ferromagnetic electrode. In the chiral molecular trefoil knot, there are no stereogenic carbon atoms, and chirality results from the spatial arrangements of crossings in the trefoil knot structures. The molecules show a very high spin polarization of nearly 90%, a conductivity that is higher by about 2 orders of magnitude compared with that of other chiral small molecules, and enhanced thermal stability. A plausible explanation for these special properties is provided, combined with model calculations, that supports the role of electron-electron interaction in these systems.
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