Magnetic switching of spin-scattering centers in Dresselhaus [110] circuits
Spin carriers subject to Dresselhaus [110] (D110) spin-orbit coupling (SOC) gather null spin phases in closed circuits, contrary to usual Rashba and Dresselhaus [001] SOC. We show that D110 spin phases can be activated in square circuits by introducing an in-plane Zeeman field, where localized field...
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Published in | arXiv.org |
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Main Authors | , , , , |
Format | Paper Journal Article |
Language | English |
Published |
Ithaca
Cornell University Library, arXiv.org
29.10.2024
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ISSN | 2331-8422 |
DOI | 10.48550/arxiv.2302.11271 |
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Abstract | Spin carriers subject to Dresselhaus [110] (D110) spin-orbit coupling (SOC) gather null spin phases in closed circuits, contrary to usual Rashba and Dresselhaus [001] SOC. We show that D110 spin phases can be activated in square circuits by introducing an in-plane Zeeman field, where localized field inhomogeneities act as effective spin-scattering centers. Our simulations show rich interference patterns in the quantum conductance, which work as maps for a geometric classification of the propagating spin states. We also find that disorder facilitates low-field implementations. |
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AbstractList | Phys. Rev. B 109, 035308 (2024) Spin carriers subject to Dresselhaus [110] (D110) spin-orbit coupling (SOC)
gather null spin phases in closed circuits, contrary to usual Rashba and
Dresselhaus [001] SOC. We show that D110 spin phases can be activated in square
circuits by introducing an in-plane Zeeman field, where localized field
inhomogeneities act as effective spin-scattering centers. Our simulations show
rich interference patterns in the quantum conductance, which work as maps for a
geometric classification of the propagating spin states. We also find that
disorder facilitates low-field implementations. Spin carriers subject to Dresselhaus [110] (D110) spin-orbit coupling (SOC) gather null spin phases in closed circuits, contrary to usual Rashba and Dresselhaus [001] SOC. We show that D110 spin phases can be activated in square circuits by introducing an in-plane Zeeman field, where localized field inhomogeneities act as effective spin-scattering centers. Our simulations show rich interference patterns in the quantum conductance, which work as maps for a geometric classification of the propagating spin states. We also find that disorder facilitates low-field implementations. |
Author | Rodríguez, E J Nitta, J Frustaglia, D Baltanás, J P Reynoso, A A |
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BackLink | https://doi.org/10.48550/arXiv.2302.11271$$DView paper in arXiv https://doi.org/10.1103/PhysRevB.109.035308$$DView published paper (Access to full text may be restricted) |
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Snippet | Spin carriers subject to Dresselhaus [110] (D110) spin-orbit coupling (SOC) gather null spin phases in closed circuits, contrary to usual Rashba and... Phys. Rev. B 109, 035308 (2024) Spin carriers subject to Dresselhaus [110] (D110) spin-orbit coupling (SOC) gather null spin phases in closed circuits,... |
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SubjectTerms | Circuits Magnetic switching Physics - Mesoscale and Nanoscale Physics Scattering Spin-orbit interactions |
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Title | Magnetic switching of spin-scattering centers in Dresselhaus [110] circuits |
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