Proximity effects and triplet correlations in Ferromagnet/Ferromagnet/Superconductor nanostructures
Abstract
We report the results of a study of superconducting proximity effects in clean Ferromagnet/Ferromagnet/Superconductor ( F1F2S) heterostructures, where the pairing state in S is a conventional singlet s-wave. We numerically find the self-consistent solutions of the Bogoliubov-de Gennes (BdG) equations and use these solutions to calculate the relevant physical quantities. By linearizing the BdG equations, we obtain the superconducting transition temperatures Tc as a function of the angle α between the exchange fields in F1 and F2. We find that the results for Tc(α) in F1F2S systems are clearly different from those in F1 S F2 systems, where Tc monotonically increases with α and is highest for antiparallel magnetizations. Here, Tc(α) is in general a non-monotonic function, and often has a minimum near α ≈ 80. For certain values of the exchange field and layer thicknesses, the system exhibits reentrant superconductivity with α: it transitions from superconducting to normal, and then returns to a superconducting state again with increasing α. This phenomenon is substantiated by a calculation of the condensation energy. We compute, in addition to the ordinary singlet pair amplitude, the induced odd triplet pairing amplitudes. The results indicate a connection between equal-spin triplet pairing and the singlet pairing state that characterizes Tc. We find also that the induced triplet amplitudes can be very long-ranged in both the S and F sides and characterize their range. We discuss the average density of states for both the magnetic and the S regions, and its relation to the pairing amplitudes and Tc. The local magnetization vector, which exhibits reverse proximity effects, is also investigated.
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