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Two-electron two-nucleus effective Hamiltonian and the spin diffusion barrier. | LitMetric

AI Article Synopsis

  • Dynamic nuclear polarization (DNP) and quantum technologies utilize the spin transfer in electron-nuclear quantum systems, but larger couplings like hyperfine interactions can hinder these processes.
  • The Schrieffer-Wolff transformation is applied to analyze a system of two electrons and two nuclei, focusing on polarization-transfer methods, including an energy-conserving electron-nuclear four-spin flip-flop.
  • The study connects magnetic resonance and quantum information, demonstrating a model where all nuclear spins can aid in hyperpolarization without being impeded by a spin diffusion barrier in DNP.

Article Abstract

Dynamic nuclear polarization (DNP) and emerging quantum technologies rely on the spin transfer in electron-nuclear hybrid quantum systems. Spin transfers might be suppressed by larger couplings, e.g., hyperfine couplings suppressing nuclear dipolar flip-flops ("spin diffusion barrier"). We apply the Schrieffer-Wolff transformation to a two-electron two-nucleus spin system involving dipolar and hyperfine couplings in their tensorial form and study possible polarization-transfer processes. Among the different effective Hamiltonian matrix elements investigated is an energy-conserving electron-nuclear four-spin flip-flop, which combines an electronic with a nuclear dipolar flip-flop. The relevance of this electron-nuclear four-spin flip-flop for nuclear spin diffusion close to electrons is supported by model fits of HypRes-on experimental data. We connect the closely related fields of magnetic resonance and quantum information and provide a model that explains how all nuclear spins can contribute to the hyperpolarization of the bulk without a spin diffusion barrier in DNP.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11698094PMC
http://dx.doi.org/10.1126/sciadv.adr7168DOI Listing

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