Coulomb interaction and first order superconductor-insulator transition
arXiv:1005.1824 · doi:10.1103/PhysRevLett.105.137001
Abstract
The superconductor-insulator transition (SIT) in regular arrays of Josephson junctions is studied at low temperatures. Near the transition a Ginzburg-Landau type action containing the imaginary time is derived. The new feature of this action is that it contains a gauge field describing the Coulomb interaction and changing the standard critical behavior. The solution of renormalization group (RG) equations derived at zero temperature in the space dimensionality shows that the SIT is always of the first order. At finite temperatures, a tricritical point separates the lines of the first and second order phase transitions. The same conclusion holds for if the mutual capacitance is larger than the distance between junctions.
4.1 pages, 1 figure
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