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The LISA-Taiji network: precision localization of massive black hole binaries

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arxiv 1909.07104 v2 pith:3WXOTU52 submitted 2019-09-16 gr-qc astro-ph.CO

classification gr-qcastro-ph.CO
keywords blackholemassivebinariesgravitational-wavelisa-taijilocalizationnetwork
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

A space-based gravitational-wave detector, LISA, consists of a triangle of three spacecrafts with a separation distance of 2.5 million kilometers in a heliocentric orbit behind the Earth. Like LISA, Taiji is compose of a triangle of three spacecrafts with a separation distance of 3 million kilometers in a heliocentric orbit ahead of the Earth. They are expected to launch in 2030-2035. Assuming a one-year overlap, we propose the LISA-Taiji network in space to fast and accurately localize the gravitational-wave sources. We use the Fisher information matrix approach to analyze the sky localization for coalescing massive black hole binaries. For an equal-mass black hole binary located at redshift of 1 with a total intrinsic mass of $10^5 M_{\odot}$, the LISA-Taiji network may achieves about four orders of magnitude improvement on the event localization region compared to an individual detector. The precision measurement of sky location from the gravitational-wave signal may completely identify the host galaxy with low redshifts prior to the final black hole merger. Such the identification of the host galaxy is helpful for the follow-up change in electromagnetic emissions of the accretion disk when the massive black hole binary merges to a single massive black hole, and enables the coalescing massive black hole binaries to be used as a standard siren.

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Cited by 2 Pith papers

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  1. Detecting Cosmological Phase Transitions with Taiji: Sensitivity Analysis and Parameter Estimation

    gr-qc 2025-04 conditional novelty 5.0 of 10

    A Bayesian injection-recovery study forecasts that Taiji can detect phase-transition gravitational wave backgrounds with peak energy density above about 1.4e-11 over most of its band.

  2. The Hubble tension: A decade review

    astro-ph.CO 2026-06 unverdicted novelty 3.0 of 10

    Pure early or late fixes to the Hubble tension are tightly constrained; remaining options are combined early-late interacting dark energy or new physics at the local-to-homogeneous transition.

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