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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
1

Sauts quantiques de phase dans des chaînes de jonctions Josephson / Quantum phase-slips in Josephson junction chains

Pop, Ioan Mihai 14 February 2011 (has links)
Nous avons étudié la dynamique des sauts quantiques de phase (quantum phase-slips) dans différents types de chaînes de jonctions Josephson. Les sauts de phase sont contrôlés par le rapport entre l'énergie Josephson et l'énergie de charge de chaque jonction. Nous avons mesuré l'effet des sauts de phase sur l'état fondamental de la chaîne et nous avons observé l'interférence quantique de sauts de phase (effet Aharonov-Casher). Les résultats de nos mesures sont en très bon accord avec les prédictions théoriques. Nous avons montré qu'une chaîne de jonctions Josephson polarisée en phase, présente un comportement collectif, similaire à un objet macroscopique. Les résultats de cette thèse ouvrent la voie pour la conception de nouveaux circuits Josephson, comme par exemple un qubit topologiquement protégé ou un dispositif quantique pour la conversion courant-fréquence. / In this thesis we presented detailed measurements of quantum phase-slips in Josephson junction chains. The measured phase-slips are the result of fluctuations induced by the finite charging energy of each junction. Our experimental results can be fitted in very good agreement by considering a simple tight-binding model for QPS. We have shown that under phase-bias, a chain of Josephson junctions or rhombi can behave in a collective way very similar to a single macroscopic quantum object. These results open the way for possible use of quantum phase-slips for the design of novel Josephson junction circuits, such as topologically protected rhombi qubits or current-to-frequency conversion devices.
2

Superconducting Nanostructures for Quantum Detection of Electromagnetic Radiation

Jafari Salim, Amir 06 September 2014 (has links)
In this thesis, superconducting nanostructures for quantum detection of electromagnetic radiation are studied. In this regard, electrodynamics of topological excitations in 1D superconducting nanowires and 2D superconducting nanostrips is investigated. Topological excitations in superconducting nanowires and nanostrips lead to crucial deviation from the bulk properties. In 1D superconductors, topological excitations are phase slippages of the order parameter in which the magnitude of the order parameter locally drops to zero and the phase jumps by integer multiple of 2\pi. We investigate the effect of high-frequency field on 1D superconducting nanowires and derive the complex conductivity. Our study reveals that the rate of the quantum phase slips (QPSs) is exponentially enhanced under high-frequency irradiation. Based on this finding, we propose an energy-resolving terahertz radiation detector using superconducting nanowires. In superconducting nanostrips, topological fluctuations are the magnetic vortices. The motion of magnetic vortices result in dissipative processes that limit the efficiency of devices using superconducting nanostrips. It will be shown that in a multi-layer structure, the potential barrier for vortices to penetrate inside the structure is elevated. This results in significant reduction in dissipative process. In superconducting nanowire single photon detectors (SNSPDs), vortex motion results in dark counts and reduction of the critical current which results in low efficiency in these detectors. Based on this finding, we show that a multi-layer SNSPD is capable of approaching characteristics of an ideal single photon detector in terms of the dark count and quantum efficiency. It is shown that in a multi-layer SNSPD the photon coupling efficiency is dramatically enhanced due to the increase in the optical path of the incident photon.

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