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Upper critical magnetic field and multiband superconductivity in artificial high-Tc superlattices of nano quantum wells

Gaetano Campi, Andrea Alimenti, Gennady Logvenov, G. Alexander Smith, F. Balakirev, Sang-Eon Lee, Luis Balicas, Enrico Silva, Giovanni Alberto Ummarino, Giovanni Midei, Andrea Perali, Antonio Valletta, Antonio Bianconi

DOI 10.1103/k2yd-vpbn · Physical Review Materials

T1

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Abstract

Artificial high-Tc superlattices (AHTS) composed of quantum building blocks with tunable superconducting critical temperature have been synthesized by engineering their nanoscale geometry using the Bianconi-Perali-Valletta (BPV) two-gap superconductivity theory. These quantum heterostructures consist of quantum wells made of superconducting, modulation-doped Mott insulators (S), confined by a metallic (N) potential barrier. The lattice geometry has been carefully engineered to induce the predicted Fano-Feshbach shape resonance between the gaps, near a topological Lifshitz transition. Here, we validate the BPV theory by providing compelling experimental evidence that AHTS samples, at the peak of the superconducting dome, exhibit resonant two-band, two-gap superconductivity. This is demonstrated by measuring the temperature dependence of the upper critical magnetic field, μ0Hc2, in samples with superlattice periods 3.3<d<5.28 nm and L/d ratios close to the magic value 2/3 (where L is the thickness of the superconducting La2CuO4 layer and d is the superlattice period). The data reveal the predicted upward concavity in Hc2(T) and a characteristic kink in the coherence length as a function of temperature, confirming the predicted two-band superconductivity with Fermi velocity ratio ≈0.25 and significant pair-exchange term among the two condensates.

Source-reported materials — not catalogue approval

FormulaReported Tc (K)Pressure (GPa)Type
La2CuO4

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43Pressure not reportedonset
La1.55Sr0.45CuO4

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—Pressure not reportedunknown

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