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Magnetic  Resonance  Imaging Guowang  John  Zhang
Magnetic Resonance Imaging Guowang John Zhang

Stanford Linear Accelerator Center Stanford, Cal~ornia
Stanford Linear Accelerator Center Stanford, Cal~ornia

Edward Wilson-Ewing, 23rd February 2015 [PDF 1.69MB]
Edward Wilson-Ewing, 23rd February 2015 [PDF 1.69MB]

Problem 1 (continued)
Problem 1 (continued)

... partial credit field will be given, where Youfield do not 1. Inthe theoptions figure below, uniform magnetic points intoexcept the page. (Thenoted. magnetic vectors needaretoindicated show your work, although you are welcome to use the space on the page for charges by the ⊗ symbols). Four particles ...
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- PhilSci

Development and performance analysis of autonomous catalytic micropumps by
Development and performance analysis of autonomous catalytic micropumps by

... recently focused on chemically powered motors and micropumps based on the local selfgeneration of gradients. The present research work deals with the catalytic micropump concept which was reported for the first time in 2005. A catalytic micropump is an active system which has the capability of trigg ...
The American University in Cairo School of Sciences and Engineering
The American University in Cairo School of Sciences and Engineering

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Parametric Decay and Anomalous Scattering from

Dirac Operators on Noncommutative Spacetimes ?
Dirac Operators on Noncommutative Spacetimes ?

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... In the rest frame of the particle, this underlying structure has the form of a standing wave2 . So regarded, the de Broglie wave is not itself, strictly speaking, the matter wave of quantum mechanics, but evidences the existence of a deeper wave structure more deserving of that title. If, consisten ...
Untitled
Untitled

Two New Theories for the Current Charge Relativity and the Electric
Two New Theories for the Current Charge Relativity and the Electric

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The Dynamics of Near-Surface Dust on Airless Bodies
The Dynamics of Near-Surface Dust on Airless Bodies

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and long-range interactions: Rydberg-dressed spin lattice
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... commerce. Therefore, the academic, the commercial and the strategic points of view require that Brazil increase its efforts and pursue the state of the art in this highly international field. In order to situate the proposed INCT-IQ within the international scene and latest developments in the Quant ...
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Ph.D. Thesis --

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... Controlled double slit electron diffraction Quantum interference explains the stability of matter, guided the construction of the laser, and led to many applications. So what is this quantum interference about? Feynman considered the double-slit experiments for electrons to contain “the only mystery ...
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... Lu et al. [1995b] documented that the neutral winds could reduce Joule heating by 28%. The ionospheric electron density also plays an essential role in determining the Joule heating rate. Without an accompanying level of ionospheric density, large electric fields may not result in large neutral gas ...
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Thermally driven magnon transport in the magnetic insulator Yttrium

... (Pt) heterostructure. Here, the high spin-orbital coupling material Pt is employed to measure the spin current via the inverse spin Hall effect. Two heating techniques, laser irradiation and microwave heating, are utilized to perform the time-resolved measurements of the longitudinal spin Seebeck ef ...
momentum-space dynamics of runaway electrons
momentum-space dynamics of runaway electrons

Presentation 3 - gnssn
Presentation 3 - gnssn

The present invention relates to electrical generators and, in
The present invention relates to electrical generators and, in

< 1 ... 4 5 6 7 8 9 10 11 12 ... 661 >

Aharonov–Bohm effect

The Aharonov–Bohm effect, sometimes called the Ehrenberg–Siday–Aharonov–Bohm effect, is a quantum mechanical phenomenon in which an electrically charged particle is affected by an electromagnetic field (E, B), despite being confined to a region in which both the magnetic field B and electric field E are zero. The underlying mechanism is the coupling of the electromagnetic potential with the complex phase of a charged particle's wavefunction, and the Aharonov–Bohm effect is accordingly illustrated by interference experiments.The most commonly described case, sometimes called the Aharonov–Bohm solenoid effect, takes place when the wave function of a charged particle passing around a long solenoid experiences a phase shift as a result of the enclosed magnetic field, despite the magnetic field being negligible in the region through which the particle passes and the particle's wavefunction being negligible inside the solenoid. This phase shift has been observed experimentally. There are also magnetic Aharonov–Bohm effects on bound energies and scattering cross sections, but these cases have not been experimentally tested. An electric Aharonov–Bohm phenomenon was also predicted, in which a charged particle is affected by regions with different electrical potentials but zero electric field, but this has no experimental confirmation yet. A separate ""molecular"" Aharonov–Bohm effect was proposed for nuclear motion in multiply connected regions, but this has been argued to be a different kind of geometric phase as it is ""neither nonlocal nor topological"", depending only on local quantities along the nuclear path.Werner Ehrenberg and Raymond E. Siday first predicted the effect in 1949, and similar effects were later published by Yakir Aharonov and David Bohm in 1959. After publication of the 1959 paper, Bohm was informed of Ehrenberg and Siday's work, which was acknowledged and credited in Bohm and Aharonov's subsequent 1961 paper.Subsequently, the effect was confirmed experimentally by several authors; a general review can be found in Peshkin and Tonomura (1989).
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