Literature DB >> 20512156

Observation of shell effects in superconducting nanoparticles of Sn.

Sangita Bose, Antonio M García-García, Miguel M Ugeda, Juan D Urbina, Christian H Michaelis, Ivan Brihuega, Klaus Kern.   

Abstract

In a zero-dimensional superconductor, quantum size effects (QSE) not only set the limit to superconductivity, but are also at the heart of new phenomena such as shell effects, which have been predicted to result in large enhancements of the superconducting energy gap. Here, we experimentally demonstrate these QSE through measurements on single, isolated Pb and Sn nanoparticles. In both systems superconductivity is ultimately quenched at sizes governed by the dominance of the quantum fluctuations of the order parameter. However, before the destruction of superconductivity, in Sn nanoparticles we observe giant oscillations in the superconducting energy gap with particle size leading to enhancements as large as 60%. These oscillations are the first experimental proof of coherent shell effects in nanoscale superconductors. Contrarily, we observe no such oscillations in the gap for Pb nanoparticles, which is ascribed to the suppression of shell effects for shorter coherence lengths. Our study paves the way to exploit QSE in boosting superconductivity in low-dimensional systems.

Entities:  

Year:  2010        PMID: 20512156     DOI: 10.1038/nmat2768

Source DB:  PubMed          Journal:  Nat Mater        ISSN: 1476-1122            Impact factor:   43.841


  12 in total

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10.  Reduction of the superconducting gap of ultrathin Pb islands grown on Si(111).

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  9 in total

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6.  Proximity Effects on the Charge Density Wave Order and Superconductivity in Single-Layer NbSe2.

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7.  Local stiffness and work function variations of hexagonal boron nitride on Cu(111).

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8.  A disorder-enhanced quasi-one-dimensional superconductor.

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9.  Phonon limited superconducting correlations in metallic nanograins.

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  9 in total

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