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Exp. points: Hardy et al. PRB 81, 060501 (2010)

Exp. points: Hardy et al. PRB 81, 060501 (2010)

Thermodynamics and Dynamics of Superconducting Devices Maxim G. Vavilov, University of Wisconsin Madison, DMR 0955500.

By zahir-robles
(100 views)

Superconducting Wire Market: Competitive Landscape, Overview and Company Profile Analysis to 2021

Superconducting Wire Market: Competitive Landscape, Overview and Company Profile Analysis to 2021

Superconducting Wire Market Categories the Global Market by Application (Industry, Energy, Medical, Research), Type (High Temperature Superconductors (First Generation and Second Generation), Low and Medium Temperature Superconductors), & by Region Download PDF Brochure on http://www.marketsandmarkets.com/pdfdownload.asp?id=226116096

By shravan123
(37 views)

Credit: Baughman  et al. ,  Science 297 , 787 (2002)

Credit: Baughman et al. , Science 297 , 787 (2002)

Credit: Baughman et al. , Science 297 , 787 (2002). www.nccr-nano.org/.../gallery_01/gallery_01_03.

By obernard
(0 views)


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Superconducting Devices for Quantum Computation

Superconducting Devices for Quantum Computation

Superconducting Devices for Quantum Computation. Xiangning Luo EE 698A Department of Electrical Engineering, University of Notre Dame. Outline of Presentation. Introduction to quantum computation Superconducting qubit devices Josephson charge qubit

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Quantum Computing with Superconducting Devices

Quantum Computing with Superconducting Devices

Quantum Computing with Superconducting Devices F.C. Wellstood, C.J. Lobb, J.R. Anderson, and A.J. Dragt, Univ. of Md. lobb@squid.umd.edu / http://www.physics.umd.edu/sqc/. Objective. Measure energy levels and decoherence rates in single Josephson junctions and SQUIDs

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Superconducting Quantum Interference Devices SQUIDs

Superconducting Quantum Interference Devices SQUIDs

Overview. BackgroundSQUID TheorySQUID Uses. SQUID Background. The SQUID is an extremely sensitive magnetic field detector.Can detect fields on the order of 10-15 TEarth\'s magnetic field: 10-4 THeart\'s magnetic field: 10-11 TBrain\'s magnetic field: 10-15 T. SQUID Background. Invented in 1964 by Robert Jaklevic, John Lambe, Arnold Silver, and James Mercereau of Ford Research Labs.Two years after the Josephson effect was postulated in 1962.One year after the first Josephson Junction24

By jacob (1251 views)

Vacuum Technology for Superconducting Devices

Vacuum Technology for Superconducting Devices

Vacuum Technology for Superconducting Devices. Paolo Chiggiato CERN Technology Department Vacuum, Surfaces and Coatings Group. Outline. Some definitions and degree of vacuum. Thermal transport at low pressure. Mass transport at low pressure: Conductance Pumping speed.

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Distributed Nonlinearities in Microwave Superconducting Devices

Distributed Nonlinearities in Microwave Superconducting Devices

Seminar for the Course: Principles of Applied Superconductivity Professor: Dr. Fardmanesh June 2010. Distributed Nonlinearities in Microwave Superconducting Devices.

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Superconducting qubits

Superconducting qubits

Superconducting qubits. Overview of Solid state qubits Superconducting qubits Detailed example: The Cooper pair box Manipulation methods Read-out methods Relaxation and dephasing Single qubits: Experimental status. 1. Overview of solid state qubits. Solid State Qubits. Energy scales.

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Superconducting Cobaltites

Superconducting Cobaltites

Superconducting Cobaltites. Nick Vence. Definition. A material which looses its electrical resistivity below a certain temperature (Tc)is said to be superconducting. History. K. Lead Tc=7K Aluminum Tc=1K Uranium Tc=0.2K Tungsten Tc=0.02K Carbon Tc=0K SWCNT Tc=15K MWCNT Tc=12K.

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Superconducting Materials

Superconducting Materials

MAGNETYZM NADPRZEWODNIKÓW NA BAZIE ŻELAZA Eu-122 BADANY METODĄ SPEKTROSKOPII MÖSSBAUEROWSKIEJ 57 Fe i 151 Eu K. Komędera 1 , L. M. Tran 2 , A. Błachowski 1 , K. Ruebenbauer 1 , J. Żukrowski 3,4 , Z. Bukowski 2

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