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Information About

Graviton





Particle Information

  Name Graviton
  Composition Elementary Particle
  Interaction Gravity
  Status Hypothetical
  Mass 0
  Mean Lifetime Stable
  Electric Charge 0
  Spin 2
  Num Spin States 2


In Physics , the graviton is a hypothetical Elementary Particle that mediates the force of Gravity in the framework of Quantum Field Theory . If it exists, the graviton must be Massless (because the gravitational force has unlimited range) and must have a Spin of 2 (because gravity is a second-rank Tensor Field ).

Gravitons are postulated because of the great success of the quantum field theory (in particular, the with the Photon , the Strong Interaction with the Gluon s, and the Weak Interaction with the W And Z Bosons . In this framework, the gravitational interaction is mediated by gravitons, instead of being described in terms of Curved Spacetime as in General Relativity . In the Classical Limit , both approaches give identical results, including Newton's Law Of Gravitation .123

However, attempts to extend the Standard Model with gravitons run into serious theoretical difficulties at high energies (processes with energies close to or above the Planck Scale ) because of infinities arising due to quantum effects (in technical terms, gravitation is Nonrenormalizable .) Some proposed theories of Quantum Gravity (in particular, String Theory ) address this issue. In string theory, gravitons (as well as the other particles) are states of strings rather than point particles, and then the infinities do not appear, while the low-energy behavior can still be approximated by a quantum field theory of point particles. In that case, the description in terms of gravitons serves as a low-energy Effective Theory .


GRAVITONS AND MODELS OF QUANTUM GRAVITY

When describing graviton interactions, the Classical Theory (i.e. the Tree Diagram s) and Semiclassical corrections ( One-loop Diagram s) behave normally, but Feynman Diagram s with two (or more) loops lead to Ultraviolet Divergence s; that is, infinite results that cannot be removed because the quantized General Relativity is not Renormalizable , unlike Quantum Electrodynamics . In popular terms, the Discrete ness of quantum theory is not compatible with the Smoothness of Einstein 's general relativity. These problems, together with some conceptual puzzles, led many physicists to believe that a theory more complete than just general relativity must regulate the behavior near the Planck Scale . Superstring Theory finally emerged as the most promising solution; it is the only known theory with finite corrections to graviton Scattering at all orders.

String Theory predicts the existence of gravitons and their well-defined Interaction s which represents one of its most important triumphs. A graviton in Perturbative string theory is a Closed String in a very particular low-energy vibrational state. The scattering of gravitons in string theory can also be computed from the Correlation Functions in Conformal Field Theory , as dictated by the AdS/CFT correspondence, or from Matrix Theory .

An interesting feature of gravitons in string theory is that, as closed strings without endpoints, they would not be bound to Brane s and could move freely between them. If we live on a brane (as hypothesized by some theorists) this "leakage" of gravitons from the brane into higher-dimensional space could explain why gravity is such a weak force, and gravitons from other branes adjacent to our own could provide a potential explanation for Dark Matter . See Brane Cosmology for more details.

Some proposed quantum theories of gravity do not predict a graviton.


EXPERIMENTAL OBSERVATION

Unambiguous detection of individual gravitons, though not prohibited by any fundamental law, is impossible with any physically reasonable detector.4 The reason is simply the extremely low Cross Section for the interaction of gravitons with matter. For example, a detector the mass of Jupiter with 100% efficiency, placed in close orbit around a Neutron Star , would only be expected to observe one graviton every 10 years, even under the most favorable conditions. It would be impossible to discriminate these events from the background of Neutrino s, and it would be impossible to shield the neutrinos without the shielding material collapsing into a Black Hole .

However, experiments to detect Gravitational Wave s, which may be viewed as Coherent State s of many gravitons, are already underway (e.g. LIGO and VIRGO ). Although these experiments cannot detect individual gravitons, they might provide information about certain properties of the graviton. For example, if gravitational waves were observed to propagate slower than ''c'' (the Speed Of Light in a vacuum), that would imply that the graviton has mass.5


IS GRAVITY LIKE THE OTHER FORCES?

Some question the analogy which motivates the introduction of the graviton. Unlike the other forces, gravitation plays a special role in General Relativity in defining the Spacetime in which events take place. Because it does not depend on a particular spacetime background, general relativity is said to be Background Independent . In contrast, the Standard Model is ''not'' background independent. In other words, general relativity and the standard model are ''incompatible''. A theory of Quantum Gravity is needed in order to reconcile these differences. Whether this theory should itself be background independent, or whether the background independence of general relativity arises as an Emergent Property is an open question. The answer to this question will determine whether gravity plays a "special role" in this underlying theory similar to its role in general relativity.


SEE ALSO



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