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  • 1
    Publication Date: 2018-06-08
    Description: Propose a method for preparing path entangled states with a definite photon number larger than two that relies on projective measurements.
    Keywords: Optics
    Type: Physical Review
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  • 2
    Publication Date: 2018-06-08
    Keywords: Optics
    Type: QSA Annual Meeting & Exhibition 2002; Orlando, FL; United States
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  • 3
    Publication Date: 2018-06-08
    Keywords: Optics
    Type: Physics of Quantum Electronics 2002; Snowbird, UT; United States
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  • 4
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    In:  Other Sources
    Publication Date: 2019-07-17
    Description: Recently, several researchers, including yours truly, have been able to demonstrate theoretically that quantum photon entanglement has the potential to also revolutionize the entire field of optical interferometry, by providing many orders of magnitude improvement in interferometer sensitivity. The quantum entangled photon interferometer approach is very general and applies to many types of interferometers. In particular, without nonlocal entanglement, a generic classical interferometer has a statistical-sampling shot-noise limited sensitivity that scales like 1/Sqrt[N], where N is the number of particles (photons, electrons, atoms, neutrons) passing through the interferometer per unit time. However, if carefully prepared quantum correlations are engineered between the particles, then the interferometer sensitivity improves by a factor of Sqrt[N] (square root of N) to scale like 1/N, which is the limit imposed by the Heisenberg Uncertainty Principle. For optical (laser) interferometers operating at milliwatts of optical power, this quantum sensitivity boost corresponds to an eight-order-of-magnitude improvement of signal to noise. Applications are to tests of General Relativity such as ground and orbiting optical interferometers for gravity wave detection, Laser Interferometer Gravity Observatory (LIGO) and the European Laser Interferometer Space Antenna (LISA), respectively.
    Keywords: Optics
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  • 5
    Publication Date: 2019-08-16
    Description: A system of etching using quantum entangled particles to get shorter interference fringes. An interferometer is used to obtain an interference fringe. N entangled photons are input to the interferometer. This reduces the distance between interference fringes by n, where again n is the number of entangled photons.
    Keywords: Optics
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  • 6
    Publication Date: 2019-08-17
    Description: A system of etching using quantum entangled particles to get shorter interference fringes. An interferometer is used to obtain an interference fringe. N entangled photons are input to the interferometer. This reduces the distance between interference fringes by n, where again n is the number of entangled photons.
    Keywords: Optics
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  • 7
    Publication Date: 2019-08-15
    Description: A system of etching using quantum entangled particles to get shorter interference fringes. An interferometer is used to obtain an interference fringe. N entangled photons are input to the interferometer. This reduces the distance between interference fringes by n, where again n is the number of entangled photons.
    Keywords: Optics
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