Interplay of Structural Chirality, Electron Spin and Topological Orbital in Chiral Molecular Spin Valves
arXiv:2209.08117 · doi:10.1038/s41467-023-40884-9
Abstract
Chirality has been a property of central importance in chemistry and biology for more than a century, and is now taking on increasing relevance in condensed matter physics. Recently, electrons were found to become spin polarized after transmitting through chiral molecules, crystals, and their hybrids. This phenomenon, called chirality-induced spin selectivity (CISS), presents broad application potentials and far-reaching fundamental implications involving intricate interplays among structural chirality, topological states, and electronic spin and orbitals. However, the microscopic picture of how chiral geometry influences electronic spin remains elusive. In this work, via a direct comparison of magnetoconductance (MC) measurements on magnetic semiconductor-based chiral molecular spin valves with normal metal electrodes of contrasting strengths of spin-orbit coupling (SOC), we unambiguously identified the origin of the SOC, a necessity for the CISS effect, given the negligible SOC in organic molecules. The experiments revealed that a heavy-metal electrode provides SOC to convert the orbital polarization induced by the chiral molecular structure to spin polarization. Our results evidence the essential role of SOC in the metal electrode for engendering the CISS spin valve effect. A tunneling model with a magnetochiral modulation of the potential barrier is shown to quantitatively account for the unusual transport behavior. This work hence produces critical new insights on the microscopic mechanism of CISS, and more broadly, reveals a fundamental relation between structure chirality, electron spin, and orbital.
References in corpus (6)
- Field-induced Conductance Switching by Charge-state Alternation in Organometallic Single-Molecule Junctions
- Chirality Induced Spin Selectivity -- The Role of Electron Correlations
- Continuum model for chiral induced spin selectivity in helical molecules
- Strong electrical magneto-chiral anisotropy in tellurium
- Vibration-Enhanced Spin-Selective Transport of Electrons in DNA Double Helix
- Molecular Patterning and Directed Self-Assembly of Gold Nanoparticles on GaAs
Cited by in corpus (17)
- Structural Chirality and Electronic Chirality in Quantum Materials
- A mechanism for electrostatically generated magnetoresistance in chiral systems without spin-dependent transport
- A group-theoretic approach to the origin of chirality-induced spin selectivity in non-magnetic molecular junctions
- Magnetochiral Charge Pumping due to Charge Trapping and Skin Effect in Chirality-Induced Spin Selectivity
- Dynamical theory of chiral-induced spin selectivity in electron donor-chiral molecule-acceptor systems
- Unconventional Spintronics from Chiral Perovskites
- Chirality Dependent Photon Transport and Helical Superradiance
- Achiral dipoles on a ferromagnet can affect its magnetization direction
- Should it really be that hard to model the chirality induced spin selectivity effect?
- Mind the Gap: From Resolving Theoretical Foundations of Chiral(ity)-Induced Spin Selectivity to Pioneering Implementations in Quantum Sensing
- Signatures of a Spin-Active Interface and Locally Enhanced Zeeman field in a Superconductor-Chiral Material Heterostructure
- Anomalous Magnetoresistance beyond the Jullière Model for Spin Selectivity in Chiral Molecules
- Filtering Spin and Orbital Moment in Centrosymmetric Systems
- Photomagnetic-Chiral Anisotropy mediated by Chirality-Driven Asymmetric Spin Splitting
- Probing the Chirality of Trigonal Selenium and Tellurium by Spin and Orbital Hall Effects
- Unconventional Spin Valve Based on Normal Metal/Chiral Molecule/Altermagnet Junctions
- Classical 'spin' filtering with two degrees of freedom and dissipation