We report the experimental observation of the Josephson critical current across layers, Ic^⊥, for Nb/Cu multilayers. Unique samples with a small cross section (20 {μ}m in diameter) consisting of ten Nb/Cu junctions were fabricated for such measurements. A strong influence of the dimensional 3D-2D crossover on the Ic^⊥ was observed. Thus, as the temperature becomes smaller than T2D, hysteresis in the current-voltage characteristic appears and the behavior of the temperature dependence of the Ic^⊥ changes. For T>T2D the diminishing of the hysteresis is caused by a sharp decrease of the junction capacitance in the 3D regime when the sample becomes uniform across layers. Calculation of the critical-current temperature dependence Ic^⊥(T) for our multilayers was made. An agreement between experimental and theoretical dependencies Ic^⊥(T) was found. From the theoretical simulations, we have obtained the dependence of the crossover and the critical temperatures of multilayers on the layer thicknesses, the boundary transparency, and layer conductivity.
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Krasnov et al. (1994) studied this question.
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