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Interferometric Constraints on Quantum Geometrical Shear Noise Correlations

Authors :
Chou, Aaron
Glass, Henry
Gustafson, H. Richard
Hogan, Craig J.
Kamai, Brittany L.
Kwon, Ohkyung
Lanza, Robert
McCuller, Lee
Meyer, Stephan S.
Richardson, Jonathan W.
Stoughton, Chris
Tomlin, Ray
Weiss, Rainer
Source :
Class. Quantum Grav. 34 165005 (2017)
Publication Year :
2017

Abstract

Final measurements and analysis are reported from the first-generation Holometer, the first instrument capable of measuring correlated variations in space-time position at strain noise power spectral densities smaller than a Planck time. The apparatus consists of two co-located, but independent and isolated, 40 m power-recycled Michelson interferometers, whose outputs are cross-correlated to 25 MHz. The data are sensitive to correlations of differential position across the apparatus over a broad band of frequencies up to and exceeding the inverse light crossing time, 7.6 MHz. By measuring with Planck precision the correlation of position variations at spacelike separations, the Holometer searches for faint, irreducible correlated position noise backgrounds predicted by some models of quantum space-time geometry. The first-generation optical layout is sensitive to quantum geometrical noise correlations with shear symmetry---those that can be interpreted as a fundamental noncommutativity of space-time position in orthogonal directions. General experimental constraints are placed on parameters of a set of models of spatial shear noise correlations, with a sensitivity that exceeds the Planck-scale holographic information bound on position states by a large factor. This result significantly extends the upper limits placed on models of directional noncommutativity by currently operating gravitational wave observatories.<br />Comment: Matches the journal accepted version

Details

Database :
arXiv
Journal :
Class. Quantum Grav. 34 165005 (2017)
Publication Type :
Report
Accession number :
edsarx.1703.08503
Document Type :
Working Paper
Full Text :
https://doi.org/10.1088/1361-6382/aa7bd3