AI Article Synopsis

  • - Fe-porphyrin (FeP) is ideal for molecular spintronic devices due to its unique balance of properties, which allows for easy manipulation and integration into devices thanks to its flat structure.
  • - The proposed mechanical spin-switch device utilizes external strain to trigger the magneto-structural coupling in FeP via organic materials, specifically graphene nanoribbons, enhancing reliability compared to traditional setups.
  • - By employing advanced theoretical methods, the study shows that applying tensile strain can change FeP from a low-spin to a high-spin state, significantly altering the device's electrical current, thus advancing molecular spintronic technology.

Article Abstract

Among spin-crossover complexes, Fe-porphyrin (FeP) stands out for molecular spintronic applications: an intricate, yet favourable balance between ligand fields, charge transfer, and the Coulomb interaction makes FeP highly manipulable, while its planar structure facilitates device integration. Here, we theoretically design a mechanical spin-switch device in which external strain triggers the intrinsic magneto-structural coupling of FeP through a purely organic embedding. Exploiting the chemical compatibility and stretchability of graphene nanoribbon electrodes, we overcome common reliability and reproducibility issues of conventional inorganic setups. The competition between the Coulomb interaction and distortion-induced changes in ligand fields requires methodologies beyond the state-of-the-art: combining density functional theory with many-body techniques, we demonstrate experimentally feasible tensile strain to trigger a low-spin ( = 1) to high-spin ( = 2) crossover. Concomitantly, the current through the device toggles by over an order of magnitude, adding a fully planar mechanical current-switch unit to the panoply of molecular spintronics.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8386408PMC
http://dx.doi.org/10.1039/d1na00407gDOI Listing

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