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September 10, 2025Science14 citations

Spin-selective transport through chiral ferromagnetic nanohelices

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YJYoo Sang JeonEJEunjin JeongSISang Won Im

Key Points

  • Chiral ferromagnetic nanohelices demonstrate significant control of electron flow direction, impacting spin selectivity.
  • Observations reveal the role of Faraday’s law in nanostructures, with implications for developing spin-tunable devices.
  • Using electrochemical synthesis, uniform structures with regulated chirality were achieved in cobalt-iron nanohelices.
  • Chirality and magnetoresistance interplay suggests potential advancements in technology based on these properties.

Abstract

Chiral crystals with well-defined handedness in atomic arrangements exhibit properties such as spin selectivity, asymmetric magnetoresistance, and skyrmions. Although similar geometry-induced phenomena in chiral organic molecule-based systems were observed, synthesizing uniform inorganic nanostructures with desired chirality using a scalable method remains challenging. We electrochemically synthesized chiral ferromagnetic cobalt-iron nanohelices from nanoparticles in anodized aluminum oxide templates. The spiral directions and the number of strands were regulated by incorporating chiral molecules and applying an appropriate potential. We demonstrate the observation of Faraday’s law of induction at the nanoscale and show how chiral nanohelices regulate the electron flow direction. The implications of our findings extend to the technological realm, with chirality- and ferromagnetism-based spin-tunable devices.

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Cite This Study

Jeon et al. (2025) studied this question.

synapsesocial.com/papers/68c189d29b7b07f3a061333bhttps://doi.org/10.1126/science.adx5963
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