English

Experimental Demonstration of an On-Axis Laser Ranging Interferometer for Future Gravity Missions

Optics 2026-04-17 v2 Instrumentation and Methods for Astrophysics Instrumentation and Detectors

Abstract

We experimentally demonstrate a novel interferometric architecture for next-generation gravity missions, featuring a laser ranging interferometer (LRI) that enables monoaxial transmission and reception of laser beams between two optical benches with a heterodyne frequency of 7.3 MHz. Active beam steering loops, utilizing differential wavefront sensing (DWS) signals, ensure co-alignment between the receiving (RX) beam and the transmitting (TX) beam. With spacecraft attitude jitter simulated by hexapod-driven rotations, the interferometric link achieves a pointing stability below 10 urad/Hz\mathrm{\sqrt{Hz}} in the frequency range between 0.2 mHz and 0.5 Hz, and the fluctuation of the TX beam's polarization state results in a reduction of 0.14\% in the carrier-to-noise-density ratio over a 15-hour continuous measurement. Additionally, tilt-to-length (TTL) coupling is experimentally investigated using the periodic scanning of the hexapod. Experimental results show that the on-axis LRI enables the inter-spacecraft ranging measurements with nanometer accuracy, making it a potential candidate for future GRACE-like missions.

Keywords

Cite

@article{arxiv.2511.19533,
  title  = {Experimental Demonstration of an On-Axis Laser Ranging Interferometer for Future Gravity Missions},
  author = {Daikang Wei and Christoph Bode and Kohei Yamamoto and Yongho Lee and Germán Fernández Barranco and Vitali Müller and Miguel Dovale Álvarez and Juan José Esteban Delgado and Gerhard Heinzel},
  journal= {arXiv preprint arXiv:2511.19533},
  year   = {2026}
}

Comments

17 pages, 14 figures