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Quantum chromodynamics and Wilson loop

Shortcuts: Differences, Similarities, Jaccard Similarity Coefficient, References.

Difference between Quantum chromodynamics and Wilson loop

Quantum chromodynamics vs. Wilson loop

In theoretical physics, quantum chromodynamics (QCD) is the theory of the strong interaction between quarks and gluons, the fundamental particles that make up composite hadrons such as the proton, neutron and pion. In gauge theory, a Wilson loop (named after Kenneth G. Wilson) is a gauge-invariant observable obtained from the holonomy of the gauge connection around a given loop.

Similarities between Quantum chromodynamics and Wilson loop

Quantum chromodynamics and Wilson loop have 9 things in common (in Unionpedia): Color confinement, Gauge theory, Kenneth G. Wilson, Particle physics, Physical Review, Quantum chromodynamics, Quantum field theory, Quark–gluon plasma, String theory.

Color confinement

In quantum chromodynamics (QCD), color confinement, often simply called confinement, is the phenomenon that color charged particles (such as quarks and gluons) cannot be isolated, and therefore cannot be directly observed in normal conditions below the Hagedorn temperature of approximately 2 trillion kelvin (corresponding to energies of approximately 130–140 MeV per particle).

Color confinement and Quantum chromodynamics · Color confinement and Wilson loop · See more »

Gauge theory

In physics, a gauge theory is a type of field theory in which the Lagrangian is invariant under certain Lie groups of local transformations.

Gauge theory and Quantum chromodynamics · Gauge theory and Wilson loop · See more »

Kenneth G. Wilson

Kenneth Geddes "Ken" Wilson (June 8, 1936 – June 15, 2013) was an American theoretical physicist and a pioneer in leveraging computers for studying particle physics.

Kenneth G. Wilson and Quantum chromodynamics · Kenneth G. Wilson and Wilson loop · See more »

Particle physics

Particle physics (also high energy physics) is the branch of physics that studies the nature of the particles that constitute matter and radiation.

Particle physics and Quantum chromodynamics · Particle physics and Wilson loop · See more »

Physical Review

Physical Review is an American peer-reviewed scientific journal established in 1893 by Edward Nichols.

Physical Review and Quantum chromodynamics · Physical Review and Wilson loop · See more »

Quantum chromodynamics

In theoretical physics, quantum chromodynamics (QCD) is the theory of the strong interaction between quarks and gluons, the fundamental particles that make up composite hadrons such as the proton, neutron and pion.

Quantum chromodynamics and Quantum chromodynamics · Quantum chromodynamics and Wilson loop · See more »

Quantum field theory

In theoretical physics, quantum field theory (QFT) is the theoretical framework for constructing quantum mechanical models of subatomic particles in particle physics and quasiparticles in condensed matter physics.

Quantum chromodynamics and Quantum field theory · Quantum field theory and Wilson loop · See more »

Quark–gluon plasma

A quark–gluon plasma (QGP) or quark soup is a state of matter in quantum chromodynamics (QCD) which exists at extremely high temperature and/or density.

Quantum chromodynamics and Quark–gluon plasma · Quark–gluon plasma and Wilson loop · See more »

String theory

In physics, string theory is a theoretical framework in which the point-like particles of particle physics are replaced by one-dimensional objects called strings.

Quantum chromodynamics and String theory · String theory and Wilson loop · See more »

The list above answers the following questions

Quantum chromodynamics and Wilson loop Comparison

Quantum chromodynamics has 170 relations, while Wilson loop has 32. As they have in common 9, the Jaccard index is 4.46% = 9 / (170 + 32).

References

This article shows the relationship between Quantum chromodynamics and Wilson loop. To access each article from which the information was extracted, please visit:

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