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March 21, 2026Science Advances2 citationsOpen Access

PT symmetry enforced twin exchange as the origin of chirality-induced spin selectivity

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PTPius M. TheilerNational Renewable Energy LaboratorySDSander DriessenDuke UniversityMBMatthew C. BeardNational Renewable Energy Laboratory

Key Points

  • The research aims to explain chirality-induced spin selectivity (CISS) through a new twin-pair exchange mechanism.
  • Developed a non-Hermitian effective Hamiltonian to describe CISS phenomena.
  • Analyzed the role of structural chirality in enforcing twin-pair exchange through the indistinguishability principle.
  • Connected CISS to symmetry-breaking phenomena in physics.
  • Presented a new framework that reconciles discrepancies in CISS behavior.
  • Showed that non-Hermitian formalism allows for real eigenvalues and thermodynamic consistency.
  • Positioned CISS within the context of equilibrium phenomena like ferromagnetism and superconductivity.

Abstract

Chiral molecules, ubiquitous in chemistry and biology, can differentiate electrons by their spin, a phenomenon known as chirality-induced spin selectivity (CISS). Despite its robustness and technological relevance, CISS has resisted conventional explanation: Spin-orbit coupling (SOC) models cannot fully account for the observed magnitude, room-temperature persistence, or equilibrium signatures. Here, we argue that structural chirality enforces a twin-pair exchange mechanism via the indistinguishability principle, which intrinsically couples spin and spatial degrees of freedom such that wave functions cannot be factorized into spin and spatial components. We derive an effective Hamiltonian that describes both transport and equilibrium CISS phenomena and is non-Hermitian. However, the inherent pseudo-Hermiticity, with Formula: see text symmetry as a special case, ensures real eigenvalues and thermodynamic consistency. We demonstrate that our framework is a step toward resolving long-standing anomalies of CISS. It situates CISS alongside equilibrium symmetry-breaking phenomena such as ferromagnetism and superconductivity, with implications for spintronics, catalysis, and the origins of biological homochirality.

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Cite This Study

Theiler et al. (2026) studied this question.

synapsesocial.com/papers/69be35f96e48c4981c6747ebhttps://doi.org/10.1126/sciadv.aec7069
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