Picometer-level quadrangle optical bonding bench for testing interferometric technologies in TianQin
Abstract
Interferometric techniques are crucial for space-based gravitational wave detection, requiring a picometer-level stable optical bench, precise phasemeter, interstellar transponder low-light phase locking, and laser sideband communication. These technologies must be rigorously tested on the ground before deployment in space. The AEI group has previously developed a picometer-stable hexapod optical bench to verify the linearity and precision of phase extraction for LISA. In this paper, we introduce a quadrangle quasi-monolithic optical bench aimed at simplifying the system and expanding the range of tested interferometric techniques for TianQin. Experimental results demonstrate that the system achieves picometer-level optical pathlength stability and phase resolution over a large dynamic range. In the laser transponder link test, the light phase-locked residual noise is lower than 10-4\,rad/Hz1/2 above millihertz frequency range, and the laser sideband modulation has no significant coupling to the measurements in the mHz-Hz band. These results provide critical technical validation for the implementation of future gravitational wave detection in space.
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