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4.1. Energy-time dispersive signature
4.1. Energy-time dispersive signature

... Alfvén waves in the fluid-kinetic simulations would be accompanied by bursts of accelerated electrons. A particle-in-cell (PIC) simulation was used by Clark and Seyler [1999] in proposing that nonlinear inertial Alfvén waves in the electrostatic limit are capable of producing suprathermal electron b ...
Minimum Probability of Error for Asynchronous Gaussian Multiple
Minimum Probability of Error for Asynchronous Gaussian Multiple

field concepts and the emergence of a holistic
field concepts and the emergence of a holistic

... the actual understanding of quantum theory. The description of reality by isolated, context-independent, elementary systems such as quarks, electrons, atoms, or molecules is only permissible under certain specific experimental conditions, and these entities cannot in any way be considered as „fundam ...
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Source

... amount of attributes that is enough for this simple line data model, but can make use of possible future developments of the models they point to. • light pink represent placeholder classes, and have no attributes in the current model (they are left here as reference for future possible developments ...
Spin-density wave in a quantum wire
Spin-density wave in a quantum wire

... dimensional system of electrons with spin-rotationally invariant interaction between particles (such as the usual Coulomb interaction) cannot have magnetically ordered ground state. At finite temperature any such order is destroyed by thermal fluctuations and the statement is known as the Mermin-Wag ...
Structure, Individuality and Quantum Gravity
Structure, Individuality and Quantum Gravity

Quantum Magnetism
Quantum Magnetism

here - LaBRI
here - LaBRI

The Universal Extra Dimensional Model with S^2/Z_2 extra
The Universal Extra Dimensional Model with S^2/Z_2 extra

... Qualitative features of the quantum corrections Overall structure is similar to mUED There are bulk contribution and boundary contribution KK photon receive negative mass correction First KK photon would be the Dark matter candidate ...
Three-body dynamics in hydrogen ionization by fast highly charged
Three-body dynamics in hydrogen ionization by fast highly charged

Capacitive Coupling of Atomic Systems to Mesoscopic Conductors
Capacitive Coupling of Atomic Systems to Mesoscopic Conductors

... Ideally one would like to trap the Rydberg atoms to ensure that the motional state remains decoupled from the evolution of the internal states. Such trapping of Rydberg atoms has not yet been demonstrated, but even without trapping the Rydberg levels it is still possible to avoid a significant deter ...
attosecond light pulses
attosecond light pulses

... packet away from the ion, but soon the field wave reverses direction and the electron wave packet is pushed back [2]. Parts of the wave packet return and pass over their first point of origin, completing the interferometer (see figure 5). In figure 5, the motion of the electron is represented by the ...
6 Weak Interactions
6 Weak Interactions

Slides - NetCod 2013
Slides - NetCod 2013

Chapter I Electromagnetic field theory
Chapter I Electromagnetic field theory

... An electromagnetic pump A direct-current motor Summary ...
Capture of the lamb: Diffusing predators seeking a diffusing prey
Capture of the lamb: Diffusing predators seeking a diffusing prey

... statistics,8 moves to the right as 冑4D L t ln N, where D L is the lion diffusivity. Because this time dependence matches that of the lamb’s diffusion, the survival probability depends intimately on these two motions,9–11 with the result that S N (t)⬃t ⫺ ␤ N and ␤ N ⬀ln N. The logarithmic dependence ...
Classical harmonic oscillator with quantum energy spectrum
Classical harmonic oscillator with quantum energy spectrum

... electron, which do not satisfy the Bohr-Sommerfeld rules of selection were rejected and considered as impossible in the old quantum mechanics. A weakness of the old quantum theory was its inconsistency. On one hand the electron motion in atom remained a classical one, but on the other hand the new ...
THE BLACK HOLE INTERPRETATION OF STRING THEORY 1
THE BLACK HOLE INTERPRETATION OF STRING THEORY 1

An Extreme form of Superactivation for Quantum Zero-Error
An Extreme form of Superactivation for Quantum Zero-Error

... In order to prove our results, we need some basic notions from algebraic geometry (see e.g. Ref. [7]). A key concept is that of a Zariski-closed set, and the resulting Zariski topology. We will only ever work over base fields C or R, so for our purposes Zariski-closed sets are sets defined by a coll ...
What can string theory teach us about condensed matter physics?
What can string theory teach us about condensed matter physics?

Y-system
Y-system

Page 1 Lecture: Quantum Optics Derivation of the Master Equation
Page 1 Lecture: Quantum Optics Derivation of the Master Equation

Powerpoint97 - mindsofmexico.org
Powerpoint97 - mindsofmexico.org

Three particle Hyper Entanglement: Teleportation and Quantum Key
Three particle Hyper Entanglement: Teleportation and Quantum Key

... state [1], super dense coding of information [2] and secure communication [3]. An arbitrary qubit can be teleported from one particle to another with the use of an entangled pair of particles, which had been experimentally verified in different quantum systems [4, 5]. However, distinguishing all the ...
Lecture notes, Chapter 4. Energy Levels
Lecture notes, Chapter 4. Energy Levels

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Quantum electrodynamics



In particle physics, quantum electrodynamics (QED) is the relativistic quantum field theory of electrodynamics. In essence, it describes how light and matter interact and is the first theory where full agreement between quantum mechanics and special relativity is achieved. QED mathematically describes all phenomena involving electrically charged particles interacting by means of exchange of photons and represents the quantum counterpart of classical electromagnetism giving a complete account of matter and light interaction.In technical terms, QED can be described as a perturbation theory of the electromagnetic quantum vacuum. Richard Feynman called it ""the jewel of physics"" for its extremely accurate predictions of quantities like the anomalous magnetic moment of the electron and the Lamb shift of the energy levels of hydrogen.
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