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Persistent Chirality-Induced Spin-Selectivity Effect in Circular Helix Molecules

Song Chen, Ruqian Wu, Hua‐Hua Fu

2024Nano Letters12 citationsDOI

Abstract

The spin–orbit coupling (SOC), the dynamics of the nonequilibrium transport process, and the breaking of time-reversal and space-inversion symmetries have been regarded as key factors for the emergence of chirality-induced spin selectivity (CISS) and chirality-dependent spin currents in helix molecules. In this work, we demonstrated the generation of persistent CISS currents in various circular single-stranded DNAs and 3 10 -helix proteins for the first time, regardless of whether an external magnetic flux is applied or not. This new CISS effect presents only in equilibrium transport processes, distinct from the traditional CISS observed in nonequilibrium transport processes and linear helix molecules; we term it as the PCISS effect. Notably, PCISS manifests irrespective of whether the SOC is chirality-driven or stems from heavy-metal substrates, making it an efficient way to generate chirality-locked pure spin currents. Our research establishes a novel paradigm for examining the underlying physics of the CISS effect.

Topics & Concepts

Chirality (physics)Non-equilibrium thermodynamicsPoint reflectionMoleculeHelix (gastropod)Spin (aerodynamics)Chemical physicsSelectivityCondensed matter physicsSpin–orbit interactionChemistryPhysicsMolecular physicsSymmetry breakingQuantum mechanicsSpontaneous symmetry breakingEcologyThermodynamicsNambu–Jona-Lasinio modelCatalysisBiochemistryBiologySnailDNA and Nucleic Acid ChemistryAdvanced NMR Techniques and ApplicationsMolecular spectroscopy and chirality
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