Strain and proximity effect in (La,Sr)2CuO4based superconducting superlattices

Abstract
Controlled variations of the in-plane Cu-O bond length and interlayer proximity coupling have been produced in laser-ablated superlattices containing superconducting La1.85 Sr0.15 CuO4 (LSCO). In LSCO/Sm2 CuO4 strained superlattices, the in-plane lattice constant a of the LSCO layers is increased and the transition temperature (Tc) is decreased. We estimate the effective pressure to be -8 GPa by comparing with LSCO/La2 CuO4 unstrained superlattices. We conclude the in-plane Cu-O bond length is an important factor controlling Tc. For LSCO/overdoped-La1.65 Sr0.35 CuO4 (metallic) superlattices, a proximity-induced coherence length of 50 Å is calculated for the overdoped material using the de Gennes–Werthamer theory, from the Tc dependence on individual layer thickness.