Measurements indicating that planar networks of superconductive islands connected by Josephson junctions display long-range quantum coherence are reported. The networks consist of superconducting islands connected by Josephson junctions and have a tree-like topological structure containing no loops. Enhancements of superconductive gaps over specific branches of the networks and sharp increases in pair currents are the main signatures of the coherent states. In order to unambiguously attribute the observed effects to branches being embedded in the networks, comparisons with geometrically equivalent-but isolated-counterparts are reported. Tuning the Josephson coupling energy by an external magnetic field generates increases in the Josephson currents, along the above-mentioned specific branches, which follow a functional dependence typical of phase transitions. Results are presented for double comb and star geometry networks, and in both cases, the observed effects provide positive quantitative evidence of the predictions of existing theoretical models.

Lucci, M., Campanari, V., Cassi, D., Merlo, V., Romeo, F., Salina, G., et al. (2022). Quantum Coherence in Loopless Superconductive Networks. ENTROPY, 24(11), 1690 [10.3390/e24111690].

Quantum Coherence in Loopless Superconductive Networks

Lucci, Massimiliano
Membro del Collaboration Group
;
Merlo, Vittorio
Membro del Collaboration Group
;
Romeo, Francesco
Membro del Collaboration Group
;
Cirillo, Matteo
Membro del Collaboration Group
2022-11-18

Abstract

Measurements indicating that planar networks of superconductive islands connected by Josephson junctions display long-range quantum coherence are reported. The networks consist of superconducting islands connected by Josephson junctions and have a tree-like topological structure containing no loops. Enhancements of superconductive gaps over specific branches of the networks and sharp increases in pair currents are the main signatures of the coherent states. In order to unambiguously attribute the observed effects to branches being embedded in the networks, comparisons with geometrically equivalent-but isolated-counterparts are reported. Tuning the Josephson coupling energy by an external magnetic field generates increases in the Josephson currents, along the above-mentioned specific branches, which follow a functional dependence typical of phase transitions. Results are presented for double comb and star geometry networks, and in both cases, the observed effects provide positive quantitative evidence of the predictions of existing theoretical models.
18-nov-2022
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore FIS/03 - FISICA DELLA MATERIA
English
Con Impact Factor ISI
Josephson junction networks
macroscopic quantum coherence
superconductive tunneling
https://www.mdpi.com/search?authors=merlo&journal=entropy
Lucci, M., Campanari, V., Cassi, D., Merlo, V., Romeo, F., Salina, G., et al. (2022). Quantum Coherence in Loopless Superconductive Networks. ENTROPY, 24(11), 1690 [10.3390/e24111690].
Lucci, M; Campanari, V; Cassi, D; Merlo, V; Romeo, F; Salina, G; Cirillo, M
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/310598
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