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Alternative approach to time-delay interferometry with an optical frequency comb

Kohei Yamamoto1,2,3,*, Hannah Tomio4, Charlotte Zehnder5, Kenji Numata2, and Holly Leopardi2

  • *Contact author: y9m9k0h@gmail.com

Phys. Rev. Applied 25, 054042 – Published 15 May, 2026

DOI: https://doi.org/10.1103/9cdp-rh4j

Abstract

Spaceborne gravitational wave observatories, exemplified by the Laser Interferometer Space Antenna (LISA) mission, are designed to remove laser noise and clock noise from interferometric phase measurements in postprocessing. The planned observatories will utilize electro-optic modulators (EOMs) to encode the onboard clock timing onto the beam phase. Recent research has demonstrated the advantage of introducing an optical frequency comb (OFC) in the metrology system with the modified framework of time-delay interferometry (TDI): the removal of the EOM and the simultaneous suppression of the stochastic jitter of the laser and the clock in the observation band. In this paper, we explore an alternative approach with the OFC-based metrology system. We report that, after proper treatment, it is possible to use the measured carrier-carrier heterodyne frequencies to monitor the time derivative of the pseudoranges, which represent the physical light travel time and the clock difference. This approach does not require changing the existing TDI framework, as previous OFC-based efforts did. Furthermore, this approach naturally captures not only stochastic jitter but also clock offsets and slow drifts. We also present the experimental demonstration of our scheme using two separate systems to model two spacecraft. Using this novel approach, we synchronize the two independent phase measurement systems with an accuracy better than 0.47 ns, while the stochastic jitter in the observation band is suppressed down to the setup sensitivity around the LISA performance levels at 15 pm/Hz.

Physics Subject Headings (PhySH)

Focus

An Improved Method for Space-Based Gravitational-Wave Measurements

Published 15 May, 2026

A new scheme for gravitational-wave detection provides new capabilities to reduce the noise in these high-precision measurements.

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