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One way is to search for a fifth force with tests of the strong [[equivalence principle]]: this is one of the most powerful tests of Einstein's theory of gravity, [[general relativity]]. Alternative theories of gravity, such as [[Brans-Dicke theory]], have a fifth force&mdash;possibly with infinite range. This is because gravitational interactions, in theories other than general relativity, have [[degrees of freedom (physics and chemistry)|degrees of freedom]] other than the "[[metric tensor|metric]]", which dictates the [[curvature]] of space, and different kinds of degrees of freedom produce different effects. For example, a [[scalar field]] cannot produce the [[bending of starlight|bending of light rays]]. The fifth force would manifest itself in an effect on solar system orbits, called the [[Nordtvedt effect]]. This is tested with [[Lunar Laser Ranging Experiment]]<ref>[http://funphysics.jpl.nasa.gov/technical/grp/lunar-laser.html Lunar Laser Ranging]</ref> and [[very long baseline interferometry]].
One way is to search for a fifth force with tests of the strong [[equivalence principle]]: this is one of the most powerful tests of Einstein's theory of gravity, [[general relativity]]. Alternative theories of gravity, such as [[Brans-Dicke theory]], have a fifth force&mdash;possibly with infinite range. This is because gravitational interactions, in theories other than general relativity, have [[degrees of freedom (physics and chemistry)|degrees of freedom]] other than the "[[metric tensor|metric]]", which dictates the [[curvature]] of space, and different kinds of degrees of freedom produce different effects. For example, a [[scalar field]] cannot produce the [[bending of starlight|bending of light rays]]. The fifth force would manifest itself in an effect on solar system orbits, called the [[Nordtvedt effect]]. This is tested with [[Lunar Laser Ranging Experiment]]<ref>[http://funphysics.jpl.nasa.gov/technical/grp/lunar-laser.html Lunar Laser Ranging]</ref> and [[very long baseline interferometry]].


Another kind of fifth force, which arises in [[Kaluza-Klein theory]], where the universe has [[extra dimensions]], or in [[supergravity]] or [[string theory]] is the [[Yukawa potential|Yukawa force]], which is transmitted by a light scalar field (i.e. a scalar field with a long [[Compton wavelength]], which determines the range). This has prompted a lot of recent interest, as a theory of [[supersymmetric]] large extra dimensions&mdash;dimensions with size slightly less than a millimeter&mdash;has prompted an experimental effort to test gravity on these very small scales. This requires extremely sensitive experiments which search for a deviation from the [[inverse square law]] of gravity over a range of distances.<ref>Satellite Energy Exchange (SEE) [http://www.phys.utk.edu/see/], which is set to test for a fifth force in space, where it is possible to achieve greater sensitivity.</ref> Essentially, they are looking for signs that the Yukawa interaction is kicking in at a certain length.Dr. A. Rajagopal Kamath a researcher in Cosmology has independently hypothesized from his thought experiments about a fifth fundamental force.
Another kind of fifth force, which arises in [[Kaluza-Klein theory]], where the universe has [[extra dimensions]], or in [[supergravity]] or [[string theory]] is the [[Yukawa potential|Yukawa force]], which is transmitted by a light scalar field (i.e. a scalar field with a long [[Compton wavelength]], which determines the range). This has prompted a lot of recent interest, as a theory of [[supersymmetric]] large extra dimensions&mdash;dimensions with size slightly less than a millimeter&mdash;has prompted an experimental effort to test gravity on these very small scales. This requires extremely sensitive experiments which search for a deviation from the [[inverse square law]] of gravity over a range of distances.<ref>Satellite Energy Exchange (SEE) [http://www.phys.utk.edu/see/], which is set to test for a fifth force in space, where it is possible to achieve greater sensitivity.</ref> Essentially, they are looking for signs that the Yukawa interaction is kicking in at a certain length.[[Dr. A. Rajagopal Kamath]] a researcher in Cosmology has independently hypothesized from his thought experiments about a fifth fundamental force.


Australian researchers, attempting to measure the [[gravitational constant]] deep in a mine shaft, found a discrepancy between the predicted and measured value, with the measured value being two percent too small. They concluded that the results may be explained by a repulsive fifth force with a range from a few centimetres to a kilometre. Similar experiments have been carried out onboard a submarine ([[USS Dolphin (AGSS-555)|USS ''Dolphin'' (AGSS-555)]]) while deeply submerged. A further experiment measuring the gravitational constant in a deep borehole in the Greenland ice sheet found discrepancies of a few percent, but it was not possible to eliminate a geological source for the observed signal.<ref>Ander, M. E., M. A. Zumberge, et al. (1989). "Test of Newton's inverse-square law in the Greenland ice cap." Physical Review Letters 62(9): 985-988</ref><ref>Zumberge, M. A., M. E. Ander, et al. (1990). The Greenland gravitational constant experiment. Journal of Geophysical Research. 95: 15483-15501</ref>
Australian researchers, attempting to measure the [[gravitational constant]] deep in a mine shaft, found a discrepancy between the predicted and measured value, with the measured value being two percent too small. They concluded that the results may be explained by a repulsive fifth force with a range from a few centimetres to a kilometre. Similar experiments have been carried out onboard a submarine ([[USS Dolphin (AGSS-555)|USS ''Dolphin'' (AGSS-555)]]) while deeply submerged. A further experiment measuring the gravitational constant in a deep borehole in the Greenland ice sheet found discrepancies of a few percent, but it was not possible to eliminate a geological source for the observed signal.<ref>Ander, M. E., M. A. Zumberge, et al. (1989). "Test of Newton's inverse-square law in the Greenland ice cap." Physical Review Letters 62(9): 985-988</ref><ref>Zumberge, M. A., M. E. Ander, et al. (1990). The Greenland gravitational constant experiment. Journal of Geophysical Research. 95: 15483-15501</ref>

Revision as of 02:44, 29 September 2011

Occasionally, physicists have postulated the existence of a fifth force in addition to the four known fundamental forces. The force is generally believed to have roughly the strength of gravity (i.e. it is much weaker than electromagnetism or the nuclear forces) and to have a range of anywhere from less than a millimeter to cosmological scales.

The idea is difficult to test, because gravity is such a weak force: the gravitational interaction between two objects is only significant when one has a great mass. Therefore, it takes very precise equipment to measure gravitational interactions between objects that are small compared to the Earth. Nonetheless, in the late 1980s a fifth force, operating on municipal scales (i.e. with a range of about 100 meters), was reported by researchers (Fischbach et al.)[1] who were reanalyzing results of Loránd Eötvös from earlier in the century. The force was believed to be linked with hypercharge. Over a number of years, other experiments have failed to duplicate this result.[2]

Theory and experiment

There are at least three kinds of searches that can be undertaken, which depend on the kind of force being considered, and its range.

One way is to search for a fifth force with tests of the strong equivalence principle: this is one of the most powerful tests of Einstein's theory of gravity, general relativity. Alternative theories of gravity, such as Brans-Dicke theory, have a fifth force—possibly with infinite range. This is because gravitational interactions, in theories other than general relativity, have degrees of freedom other than the "metric", which dictates the curvature of space, and different kinds of degrees of freedom produce different effects. For example, a scalar field cannot produce the bending of light rays. The fifth force would manifest itself in an effect on solar system orbits, called the Nordtvedt effect. This is tested with Lunar Laser Ranging Experiment[3] and very long baseline interferometry.

Another kind of fifth force, which arises in Kaluza-Klein theory, where the universe has extra dimensions, or in supergravity or string theory is the Yukawa force, which is transmitted by a light scalar field (i.e. a scalar field with a long Compton wavelength, which determines the range). This has prompted a lot of recent interest, as a theory of supersymmetric large extra dimensions—dimensions with size slightly less than a millimeter—has prompted an experimental effort to test gravity on these very small scales. This requires extremely sensitive experiments which search for a deviation from the inverse square law of gravity over a range of distances.[4] Essentially, they are looking for signs that the Yukawa interaction is kicking in at a certain length.Dr. A. Rajagopal Kamath a researcher in Cosmology has independently hypothesized from his thought experiments about a fifth fundamental force.

Australian researchers, attempting to measure the gravitational constant deep in a mine shaft, found a discrepancy between the predicted and measured value, with the measured value being two percent too small. They concluded that the results may be explained by a repulsive fifth force with a range from a few centimetres to a kilometre. Similar experiments have been carried out onboard a submarine (USS Dolphin (AGSS-555)) while deeply submerged. A further experiment measuring the gravitational constant in a deep borehole in the Greenland ice sheet found discrepancies of a few percent, but it was not possible to eliminate a geological source for the observed signal.[5][6]

Some experiments used lake and a 320m high tower[7] A comprehensive review suggested there is no compelling evidence for the fifth force,[8] though scientists still search for it. Fishbach's article was written in 1992 and since then other evidence has come to light that may indicate a 5th force.[9]

The above experiments search for a fifth force that is, like gravity, independent of the composition of an object, so all objects experience the force in proportion to their masses. Forces that depend on the composition of an object can be very sensitively tested by torsion balance experiments of a type invented by Loránd Eötvös. Such forces may depend, for example, on the ratio of protons to neutrons in an atomic nucleus, or the relative amount of different kinds of binding energy in a nucleus (see the semi-empirical mass formula). Searches have been done from very short ranges, to municipal scales, to the scale of the Earth, the sun, and dark matter at the center of the galaxy.

Other interactions

A few physicists[who?] think that Einstein's theory of gravity will have to be modified, not at small scales, but at large distances, or, equivalently, small accelerations. They point out that dark matter, dark energy and even the Pioneer anomaly are unexplained by the Standard Model of particle physics and suggest that some modification of gravity, possibly arising from Modified Newtonian Dynamics or the holographic principle. This is fundamentally different from conventional ideas of a fifth force, as it grows stronger relative to gravity at longer distances. Most physicists[who?], however, think that dark matter and dark energy are not ad hoc, but are supported by a large number of complementary observations and described by a very simple model.

On April 6, 2011 there was a possible discovery at Fermilab’s Tevatron that, according to physicists, could transform all of high energy physics. The possibility of discovering the elusive 'fifth force' is based on 4.3 inverse femtobarns of data. The CDF collaboration will repeat the analysis with at least twice as much data to see whether the bump gets more or less pronounced. Other experiments, including DZero and the LHC experiments, will look for a particle of about 140 GeV/c2 in their data as well. [10]

See also

References

  1. ^ Ephraim Fischbach, Daniel Sudarsky, Aaron Szafer, Carrick Talmadge, and S. H. Aronson, "Reanalysis of the Eötvös experiment", Physical Review Letters 56 3 (1986).
  2. ^ University of Washington Eöt-Wash group, the leading group searching for a fifth force.
  3. ^ Lunar Laser Ranging
  4. ^ Satellite Energy Exchange (SEE) [1], which is set to test for a fifth force in space, where it is possible to achieve greater sensitivity.
  5. ^ Ander, M. E., M. A. Zumberge, et al. (1989). "Test of Newton's inverse-square law in the Greenland ice cap." Physical Review Letters 62(9): 985-988
  6. ^ Zumberge, M. A., M. E. Ander, et al. (1990). The Greenland gravitational constant experiment. Journal of Geophysical Research. 95: 15483-15501
  7. ^ Liu Y.C., Yang X.-S., Zhu H., Zhou W., Wang Q.-S., Zhao Z., Jiang W., Wu C.-Z.,"Testing non-Newtonian gravitation on a 320 m tower", Physics Letters A., vol. 169, 131-133 (1992).
  8. ^ Fishbach E. and Talmadge C., "Six years of the fifth force", Nature, vol. 356, 207-215 (1992).
  9. ^ Evidence for Correlations Between Nuclear Decay Rates and Earth-Sun Distance Jere H. Jenkins, Ephraim Fischbach, John B. Buncher, John T. Gruenwald, Dennis E. Krause, Joshua J. Mattes Astropart.Phys.32:42-46,2009
  10. ^ http://www.symmetrymagazine.org/breaking/2011/04/07/fermilabs-data-peak-that-causes-excitement/