The Experts below are selected from a list of 327 Experts worldwide ranked by ideXlab platform

Labros Kontokostas - One of the best experts on this subject based on the ideXlab platform.

Daniel R. Terno - One of the best experts on this subject based on the ideXlab platform.

  • Large-scale Optical Interferometry in general spacetimes
    Physical Review D, 2020
    Co-Authors: Daniel R. Terno, Giuseppe Vallone, Francesco Vedovato, Paolo Villoresi
    Abstract:

    We introduce a convenient formalism to evaluate the phase of a light signal propagating on a general curved background. It allows us to obtain a transparent relation between the frequency-shift and the phase difference in large-scale Optical Interferometry for a general relativistic setting, as well as to derive compact expressions generalizing the Doppler effect in one-way and two-way schemes. Our recipe is easily applicable to stationary spacetimes, and in particular to the near-Earth experiments where the geometry is described in the parametrized post-Newtonian approximation. As an example, we use it to evaluate the phase difference arising in the Optical version of the Colella-Overhauser-Werner experiment.

  • Post-Newtonian gravitational effects in Optical Interferometry
    Physical Review D, 2015
    Co-Authors: Aharon Brodutch, Alexei Gilchrist, Thomas Guff, Alexander R. H. Smith, Daniel R. Terno
    Abstract:

    We investigate general Optical Interferometry in stationary spacetimes focusing on quantum-Optical experiments in near-Earth environments. We provide a rigorous expression for the gravitationally induced phase difference and adapt the parametrized post-Newtonian formalism for calculations of polarization rotation. We investigate two Optical versions of the Colella-Overhauser-Werner experiment and show that the phase difference is independent of the post-Newtonian parameter $\ensuremath{\gamma}$, making it a possible candidate for an Optical test of the Einstein equivalence principle. Polarization rotation provides an example of the quantum clock variable and, while related to the Optical Lense-Thirring effects, shows a qualitatively different behavior from them.

  • Post-Newtonian gravitational effects in Optical Interferometry
    Physical Review D, 2015
    Co-Authors: Aharon Brodutch, Alexei Gilchrist, Thomas Guff, Alexander R. H. Smith, Daniel R. Terno
    Abstract:

    We investigate general properties of Optical Interferometry in stationary spacetimes and apply the obtained results focusing on quantum-Optical experiments in near-Earth environments. We provide a rigorous expression for the {gravitationally induced} phase difference and adapt the parametrized post-Newtonian formalism for calculations of polarization rotation. We investigate two Optical versions of the Colella-Overhauser-Werner experiment and show that the phase difference is independent of the post-Newtonian parameter $\gamma$, making it a possible candidate for an Optical test of the Einstein equivalence principle. Polarization rotation provides an example of the quantum clock variable, and while related to the Optical Lense-Thirring effects, shows a qualitatively different behaviour.Comment: 11 pages, 1 figure. Comments welcom

Aharon Brodutch - One of the best experts on this subject based on the ideXlab platform.

  • Post-Newtonian gravitational effects in Optical Interferometry
    Physical Review D, 2015
    Co-Authors: Aharon Brodutch, Alexei Gilchrist, Thomas Guff, Alexander R. H. Smith, Daniel R. Terno
    Abstract:

    We investigate general Optical Interferometry in stationary spacetimes focusing on quantum-Optical experiments in near-Earth environments. We provide a rigorous expression for the gravitationally induced phase difference and adapt the parametrized post-Newtonian formalism for calculations of polarization rotation. We investigate two Optical versions of the Colella-Overhauser-Werner experiment and show that the phase difference is independent of the post-Newtonian parameter $\ensuremath{\gamma}$, making it a possible candidate for an Optical test of the Einstein equivalence principle. Polarization rotation provides an example of the quantum clock variable and, while related to the Optical Lense-Thirring effects, shows a qualitatively different behavior from them.

  • Post-Newtonian gravitational effects in Optical Interferometry
    Physical Review D, 2015
    Co-Authors: Aharon Brodutch, Alexei Gilchrist, Thomas Guff, Alexander R. H. Smith, Daniel R. Terno
    Abstract:

    We investigate general properties of Optical Interferometry in stationary spacetimes and apply the obtained results focusing on quantum-Optical experiments in near-Earth environments. We provide a rigorous expression for the {gravitationally induced} phase difference and adapt the parametrized post-Newtonian formalism for calculations of polarization rotation. We investigate two Optical versions of the Colella-Overhauser-Werner experiment and show that the phase difference is independent of the post-Newtonian parameter $\gamma$, making it a possible candidate for an Optical test of the Einstein equivalence principle. Polarization rotation provides an example of the quantum clock variable, and while related to the Optical Lense-Thirring effects, shows a qualitatively different behaviour.Comment: 11 pages, 1 figure. Comments welcom

Alexei Gilchrist - One of the best experts on this subject based on the ideXlab platform.

  • Post-Newtonian gravitational effects in Optical Interferometry
    Physical Review D, 2015
    Co-Authors: Aharon Brodutch, Alexei Gilchrist, Thomas Guff, Alexander R. H. Smith, Daniel R. Terno
    Abstract:

    We investigate general Optical Interferometry in stationary spacetimes focusing on quantum-Optical experiments in near-Earth environments. We provide a rigorous expression for the gravitationally induced phase difference and adapt the parametrized post-Newtonian formalism for calculations of polarization rotation. We investigate two Optical versions of the Colella-Overhauser-Werner experiment and show that the phase difference is independent of the post-Newtonian parameter $\ensuremath{\gamma}$, making it a possible candidate for an Optical test of the Einstein equivalence principle. Polarization rotation provides an example of the quantum clock variable and, while related to the Optical Lense-Thirring effects, shows a qualitatively different behavior from them.

  • Post-Newtonian gravitational effects in Optical Interferometry
    Physical Review D, 2015
    Co-Authors: Aharon Brodutch, Alexei Gilchrist, Thomas Guff, Alexander R. H. Smith, Daniel R. Terno
    Abstract:

    We investigate general properties of Optical Interferometry in stationary spacetimes and apply the obtained results focusing on quantum-Optical experiments in near-Earth environments. We provide a rigorous expression for the {gravitationally induced} phase difference and adapt the parametrized post-Newtonian formalism for calculations of polarization rotation. We investigate two Optical versions of the Colella-Overhauser-Werner experiment and show that the phase difference is independent of the post-Newtonian parameter $\gamma$, making it a possible candidate for an Optical test of the Einstein equivalence principle. Polarization rotation provides an example of the quantum clock variable, and while related to the Optical Lense-Thirring effects, shows a qualitatively different behaviour.Comment: 11 pages, 1 figure. Comments welcom

Alexander R. H. Smith - One of the best experts on this subject based on the ideXlab platform.

  • Post-Newtonian gravitational effects in Optical Interferometry
    Physical Review D, 2015
    Co-Authors: Aharon Brodutch, Alexei Gilchrist, Thomas Guff, Alexander R. H. Smith, Daniel R. Terno
    Abstract:

    We investigate general Optical Interferometry in stationary spacetimes focusing on quantum-Optical experiments in near-Earth environments. We provide a rigorous expression for the gravitationally induced phase difference and adapt the parametrized post-Newtonian formalism for calculations of polarization rotation. We investigate two Optical versions of the Colella-Overhauser-Werner experiment and show that the phase difference is independent of the post-Newtonian parameter $\ensuremath{\gamma}$, making it a possible candidate for an Optical test of the Einstein equivalence principle. Polarization rotation provides an example of the quantum clock variable and, while related to the Optical Lense-Thirring effects, shows a qualitatively different behavior from them.

  • Post-Newtonian gravitational effects in Optical Interferometry
    Physical Review D, 2015
    Co-Authors: Aharon Brodutch, Alexei Gilchrist, Thomas Guff, Alexander R. H. Smith, Daniel R. Terno
    Abstract:

    We investigate general properties of Optical Interferometry in stationary spacetimes and apply the obtained results focusing on quantum-Optical experiments in near-Earth environments. We provide a rigorous expression for the {gravitationally induced} phase difference and adapt the parametrized post-Newtonian formalism for calculations of polarization rotation. We investigate two Optical versions of the Colella-Overhauser-Werner experiment and show that the phase difference is independent of the post-Newtonian parameter $\gamma$, making it a possible candidate for an Optical test of the Einstein equivalence principle. Polarization rotation provides an example of the quantum clock variable, and while related to the Optical Lense-Thirring effects, shows a qualitatively different behaviour.Comment: 11 pages, 1 figure. Comments welcom