<p>A&#xa0;computational model is presented to predict dynamic electric polarizability, magnetic susceptibility, permittivity, and permeability. We designed platinum macrocycles that function as molecular LC-circuits. Our results show a&#xa0;linear increase in the S<sub>0</sub>→S<sub>1</sub> magnetic dipole transition moment with the number of phenyl subunits in platinum macrocycles. Furthermore, our analysis demonstrates that the achievement of negative permeability in molecular LC-circuits is critically dependent on the dipole transition moments, molecular concentration, and molecular environment.</p>

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Efficiency of molecular-based LC circuit for negative permeability

  • L. I. Valiulina,
  • K. Khoroshkin,
  • R. Valiyev,
  • V. N. Cherepanov

摘要

A computational model is presented to predict dynamic electric polarizability, magnetic susceptibility, permittivity, and permeability. We designed platinum macrocycles that function as molecular LC-circuits. Our results show a linear increase in the S0→S1 magnetic dipole transition moment with the number of phenyl subunits in platinum macrocycles. Furthermore, our analysis demonstrates that the achievement of negative permeability in molecular LC-circuits is critically dependent on the dipole transition moments, molecular concentration, and molecular environment.