Advanced gravitational reference sensor for high precision space interferometers

被引:30
|
作者
Sun, KX [1 ]
Allen, G [1 ]
Buchman, S [1 ]
DeBra, D [1 ]
Byer, R [1 ]
机构
[1] Stanford Univ, Hanson Expt Phys Lab, Stanford, CA 94305 USA
关键词
D O I
10.1088/0264-9381/22/10/021
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
LISA and the next generation of space-based laser interferometers require gravitational reference sensors (GRS) to provide distance measurements to picometre precision for LISA, and femtometre precision for the proposed Big Bang Observatory (BBO). We describe a stand-alone GRS structure that has the benefits of higher sensitivity and ease of fabrication. The proposed GRS structure enables high precision interferometric links in three-dimensional directions. The GRS housing provides the optical reference surface onto which the transmitted laser beam, and the independent received laser beam are referenced. The stand-alone GRS allows balanced optical probing of the distance of the proof mass relative to the housing at a power and wavelength that differ from the transmitted and received wavelengths and with picometre sensitivity without radiation pressure imbalance. The single parameter that reduces proof mass disturbance forces is the gap spacing. Optical readout allows the use of a large gap between the GRS housing and proof mass. We propose using rf-modulated optical interferometry to measure both relative displacement and absolute distance. Further we propose to use a reflective grating beamsplitter within the GRS and on the external optical bench. The reflective grating design eliminates the in-path transmissive optical components and the dn/dT related optical path effects, and simplifies the optical bench structure. Inside the GRS, a near-Littrow mounted grating enables picometre precision measurement at microwatts of optical power. Preliminary experimental results using a grating beamsplitter interferometer are presented, which demonstrate an optical sensing sensitivity of 30 pm Hz(-1/2).
引用
收藏
页码:S287 / S296
页数:10
相关论文
共 50 条
  • [1] Sensor Head Temperature Distribution Reconstruction of High-Precision Gravitational Reference Sensors with Machine Learning
    Duan, Zongchao
    Ren, Feilong
    Qiang, Li-E
    Qi, Keqi
    Zhang, Haoyue
    SENSORS, 2024, 24 (08)
  • [2] Advanced charge control dynamics simulation for the LISA gravitational reference sensor
    Kenyon, Samantha Parry
    Apple, Stephen
    Siu, John
    Wass, Peter J.
    Conklin, John W.
    CLASSICAL AND QUANTUM GRAVITY, 2025, 42 (05)
  • [3] Overview and Status of Advanced Interferometers for Gravitational Wave Detection
    Grote, H.
    XIV INTERNATIONAL CONFERENCE ON TOPICS IN ASTROPARTICLE AND UNDERGROUND PHYSICS (TAUP 2015), PTS 1-7, 2016, 718
  • [4] Effect of induced seismicity on advanced gravitational wave interferometers
    Mukund, N.
    O'Reilly, B.
    Somala, S.
    Mitra, S.
    CLASSICAL AND QUANTUM GRAVITY, 2019, 36 (10)
  • [5] Projected constraints on the dispersion of gravitational waves using advanced ground- and space-based interferometers
    Samajdar, Anuradha
    Arun, K. G.
    PHYSICAL REVIEW D, 2017, 96 (10)
  • [6] Comparison of Atom Interferometers and Light Interferometers as Space-Based Gravitational Wave Detectors
    Baker, John G.
    Thorpe, J. I.
    PHYSICAL REVIEW LETTERS, 2012, 108 (21)
  • [7] High precision control systems for telescopes and interferometers
    Joerck, H.
    Advances in the Astronautical Sciences, 1991, 74 : 411 - 431
  • [8] An off-axis Hartmann sensor for the measurement of absorption-induced wavefront distortion in advanced gravitational wave interferometers
    Brooks, A
    Veitch, P
    Munch, J
    Kelly, TL
    GENERAL RELATIVITY AND GRAVITATION, 2005, 37 (09) : 1575 - 1580
  • [9] Detecting gravitational waves with ground and space interferometers -: with special attention to the space project ASTROD
    Rüediger, A
    INTERNATIONAL JOURNAL OF MODERN PHYSICS D, 2002, 11 (07): : 963 - 994
  • [10] Space tests of relativistic gravity with precision clocks and atom interferometers
    L. Maleki
    General Relativity and Gravitation, 2008, 40 : 895 - 905