Superstripes and Complexity in High-Temperature Superconductors. Bianconi, A. & Poccia, N. Journal of Superconductivity and Novel Magnetism, 25(5):1403–1412, 2012.
Paper doi abstract bibtex While for many years the lattice, electronic and magnetic complexity of high-temperature superconductors (HTS) has been considered responsible for hindering the search of the mechanism of HTS, now the complexity of HTS is proposed to be essential for the quantum mechanism raising the superconducting critical temperature. The complexity is shown by the lattice heterogeneous architecture: heterostructures at atomic limit; (b) electronic heterogeneity: multiple components in the normal phase; (c) superconducting heterogeneity: multiple superconducting gaps in different points of the real space and of the momentum space. The complex phase separation forms an unconventional granular superconductor in a landscape of nanoscale superconducting striped droplets, which is called the ” superstripes” scenario. The interplay and competition between magnetic orbital charge and lattice fluctuations seems to be essential for the quantum mechanism that suppresses thermal decoherence effects at an optimum inhomogeneity.
@article{bianconi_superstripes_2012,
title = {Superstripes and {Complexity} in {High}-{Temperature} {Superconductors}},
volume = {25},
issn = {1557-1939},
url = {http://dx.doi.org/10.1007/s10948-012-1670-6},
doi = {10.1007/s10948-012-1670-6},
abstract = {While for many years the lattice, electronic and magnetic complexity of high-temperature superconductors (HTS) has been considered responsible for hindering the search of the mechanism of HTS, now the complexity of HTS is proposed to be essential for the quantum mechanism raising the superconducting critical temperature. The complexity is shown by the lattice heterogeneous architecture: heterostructures at atomic limit; (b) electronic heterogeneity: multiple components in the normal phase; (c) superconducting heterogeneity: multiple superconducting gaps in different points of the real space and of the momentum space. The complex phase separation forms an unconventional granular superconductor in a landscape of nanoscale superconducting striped droplets, which is called the ” superstripes” scenario. The interplay and competition between magnetic orbital charge and lattice fluctuations seems to be essential for the quantum mechanism that suppresses thermal decoherence effects at an optimum inhomogeneity.},
number = {5},
journal = {Journal of Superconductivity and Novel Magnetism},
author = {Bianconi, Antonio and Poccia, Nicola},
year = {2012},
pages = {1403--1412}
}
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