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The `Little Bang` in the Laboratory
The `Little Bang` in the Laboratory

Derived categories in physics
Derived categories in physics

... where the Φi are Higgs fields on either side of the open string. Can show that cohomology of QBRST above = Ext groups between corresponding sheaves (Donagi, Katz, ES ‘03) ...
Improved Direct Measurement of the Parity
Improved Direct Measurement of the Parity

UvA-DARE (Digital Academic Repository)
UvA-DARE (Digital Academic Repository)

Time-dependent perturbation theory
Time-dependent perturbation theory

... $ Info. The two-level system plays a special place in the modern development of quantum theory. In particular, it provides a platform to encode the simplest quantum logic gate, the qubit. A classical computer has a memory made up of bits, where each bit holds either a one or a zero. A quantum comput ...
Particles and Fields
Particles and Fields

University of Groningen M-theory and gauged supergravities Roest
University of Groningen M-theory and gauged supergravities Roest

... expect cancellation of certain non-renormalisable infinities. A more radical idea than supergravity seems to be required for quantum gravity. At the moment, the most promising candidate is string theory. It first surfaced in the 1960s in the context of certain scattering amplitudes of hadrons [10] ( ...
周正威
周正威

... state and the first excited state essentially become degenerate, a result in accordance with the MFT analysis. The two degenerate solitonlike states found in MFT are just the symmetric and antisymmetric superpositions of the quantum ground state and its first excited state. ...
Spin in Physical Space, Internal Space, and Hilbert
Spin in Physical Space, Internal Space, and Hilbert

Recent Progress in Ultracold Atoms
Recent Progress in Ultracold Atoms

... Data: T. Bourdel, J. Cubizolles, L. Khaykovich, K. M. F. Magalhães, S. J. J. M. F. Kokkelmans, G. V. Shlyapnikov, and C. ...
Quantum Theory of Particles and Fields
Quantum Theory of Particles and Fields

b,Q 2 - INFN - Torino Personal pages
b,Q 2 - INFN - Torino Personal pages

The Cutkosky rule of three dimensional noncommutative field
The Cutkosky rule of three dimensional noncommutative field

General relativity
General relativity

The Gluex Experiment - University of Connecticut
The Gluex Experiment - University of Connecticut

Fermionic Vortices Find their Dual - Physics (APS)
Fermionic Vortices Find their Dual - Physics (APS)

... that can be described in terms of another set of weakly coupled particles. When such a dual representation is found, it gives a solution to the strong coupling problem. A further reason that theoretical physicists get excited about dualities is that they undermine the very notion of an “elementary p ...
Slides - Indico
Slides - Indico

... But, if gravity becomes strong around the TeV scale, why is the large distance gravity so much weaker than all the other forces of nature? For example, gravitational attraction between the two protons at 1 m distance is 1037 times weaker of their Coulomb repulsion! ...
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PDF

Unified rotational and permutational symmetry and selection rules in
Unified rotational and permutational symmetry and selection rules in

Why I Still Like String Theory
Why I Still Like String Theory

TT 61: Correlated Electrons: (General) Theory 2 - DPG
TT 61: Correlated Electrons: (General) Theory 2 - DPG

Chapter 3, Lecture 2
Chapter 3, Lecture 2

T QGP - RHIG AT YALE
T QGP - RHIG AT YALE

Deconfined Quantum Criticality
Deconfined Quantum Criticality

... where, the spin wave velocity v and the coupling strength g in eq (3) have been rescaled, so that s and u are appropriately changed from eq (3). Here, the last term is obtained from short distance fluctuation of spinon field, which presents dynamics to the gauge field aµ . Actually, the effective ac ...
Mass_01 - StealthSkater
Mass_01 - StealthSkater

... The Sandard Model of physics got it right when it predicted where the mass of ordinary matter comes from, according to a massive new computational effort. Particle physics explains that the bulk of atoms is made up of protons and neutrons which are themselves composed of smaller particles known as q ...
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Quantum chromodynamics

In theoretical physics, quantum chromodynamics (QCD) is the theory of strong interactions, a fundamental force describing the interactions between quarks and gluons which make up hadrons such as the proton, neutron and pion. QCD is a type of quantum field theory called a non-abelian gauge theory with symmetry group SU(3). The QCD analog of electric charge is a property called color. Gluons are the force carrier of the theory, like photons are for the electromagnetic force in quantum electrodynamics. The theory is an important part of the Standard Model of particle physics. A huge body of experimental evidence for QCD has been gathered over the years.QCD enjoys two peculiar properties:Confinement, which means that the force between quarks does not diminish as they are separated. Because of this, when you do separate a quark from other quarks, the energy in the gluon field is enough to create another quark pair; they are thus forever bound into hadrons such as the proton and the neutron or the pion and kaon. Although analytically unproven, confinement is widely believed to be true because it explains the consistent failure of free quark searches, and it is easy to demonstrate in lattice QCD.Asymptotic freedom, which means that in very high-energy reactions, quarks and gluons interact very weakly creating a quark–gluon plasma. This prediction of QCD was first discovered in the early 1970s by David Politzer and by Frank Wilczek and David Gross. For this work they were awarded the 2004 Nobel Prize in Physics.The phase transition temperature between these two properties has been measured by the ALICE experiment to be well above 160 MeV. Below this temperature, confinement is dominant, while above it, asymptotic freedom becomes dominant.
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