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A new type of quantum speed meter interferometer: measuring speed to search for intermediate mass black holes

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arxiv 1702.01029 v2 pith:S65LE3VU submitted 2017-02-03 gr-qc quant-ph

classification gr-qcquant-ph
keywords quantuminterferometersensitivityspeedblackfrequencygravitationalhere
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abstract

The recent discovery of gravitational waves (GW) by LIGO has impressively launched the novel field of gravitational astronomy and it allowed us to glimpse at exciting objects we could so far only speculate about. Further sensitivity improvements at the low frequency end of the detection band of future GW observatories rely on quantum non-demolition (QND) methods to suppress fundamental quantum fluctuations of the light fields used to readout the GW signal. Here we invent a novel concept of how to turn a conventional Michelson interferometer into a QND speed meter interferometer with coherently suppressed quantum back-action noise by using two orthogonal polarisations of light and an optical circulator to couple them. We carry out a detailed analysis of how imperfections and optical loss influence the achievable sensitivity and find that the configuration proposed here would significantly enhance the low frequency sensitivity and increase the observable event rate of binary black hole coalescences in the range of $10^2-10^3 M_\odot$ by a factor of up to $\sim300$.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Teleportation-based Speed Meter for Precision Measurement

    quant-ph 2025-04 conditional novelty 7.0 of 10

    A teleportation-based interferometric scheme turns a position meter into a speed meter, beating the standard quantum limit in both real-time and post-processed implementations.

  2. Quantum Back Action Evasion with Reservoir Engineering

    quant-ph 2025-05 conditional novelty 6.0 of 10

    A reservoir-engineered cavity scheme with feedforward realizes a quantum speed meter that can beat the standard quantum limit for force sensing at low frequencies.

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