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Holometer information


Holographic noise in the Universe
The sensitivity of various experiments to fluctuations in space and time. Horizontal axis is the log of apparatus size (or duration times the speed of light), in meters; vertical axis is the log of the RMS fluctuation amplitude in the same units.

The Fermilab Holometer in Illinois is intended to be the world's most sensitive laser interferometer, surpassing the sensitivity of the GEO600 and LIGO systems, and theoretically able to detect holographic fluctuations in spacetime.[1][2][3]

According to the director of the project, the Holometer should be capable of detecting fluctuations in the light of a single attometer, meeting or exceeding the sensitivity required to detect the smallest units in the universe called Planck units.[1] Fermilab states: "Everyone is familiar these days with the blurry and pixelated images, or noisy sound transmission, associated with poor internet bandwidth. The Holometer seeks to detect the equivalent blurriness or noise in reality itself, associated with the ultimate frequency limit imposed by nature."[2]

Craig Hogan, a particle astrophysicist at Fermilab, states about the experiment, "What we’re looking for is when the lasers lose step with each other. We’re trying to detect the smallest unit in the universe. This is really great fun, a sort of old-fashioned physics experiment where you don’t know what the result will be."

Experimental physicist Hartmut Grote of the Max Planck Institute in Germany states that although he is skeptical that the apparatus will successfully detect the holographic fluctuations, if the experiment is successful "it would be a very strong impact to one of the most open questions in fundamental physics. It would be the first proof that space-time, the fabric of the universe, is quantized."[1]

Holometer has started, in 2014, collecting data that will help determine whether the universe fits the holographic principle.[4] The hypothesis that holographic noise may be observed in this manner has been criticized on the grounds that the theoretical framework used to derive the noise violates Lorentz-invariance. Lorentz-invariance violation is however very strongly constrained already, an issue that has been very unsatisfactorily addressed in the mathematical treatment.[5]

The Fermilab holometer has found also other uses than studying the holographic fluctuations of spacetime. It has shown constraints on the existence of high-frequency gravitational waves and primordial black holes. [6]

  1. ^ a b c Mosher, David (2010-10-28). "World's Most Precise Clocks Could Reveal Universe Is a Hologram". Wired.
  2. ^ a b "The Fermilab Holometer". Fermi National Accelerator Laboratory. Retrieved 2010-11-01.
  3. ^ Dillow, Clay (2010-10-21). "Fermilab is Building a 'Holometer' to Determine Once and For All Whether Reality Is Just an Illusion". Popular Science.
  4. ^ Do we live in a 2-D hologram? New Fermilab experiment will test the nature of the universe by Andre Salles, Fermilab Office of Communication, on August 26, 2014
  5. ^ Backreaction, Holographic Noise
  6. ^ Weiss; et al. (2017). "MHz gravitational wave constraints with decameter Michelson interferometers". Phys. Rev. D. 95 (63002): 063002. arXiv:1611.05560. Bibcode:2017PhRvD..95f3002C. doi:10.1103/PhysRevD.95.063002. S2CID 59392968.

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