Method of Far-Field Phase Noise Suppression for Space Gravitational-Wave Detection Telescope

被引:0
|
作者
Chen Shengnan [1 ]
Wang Chunyan [1 ]
Sun Hao [1 ]
Jiang Huilin [1 ]
机构
[1] Changchun Univ Sci & Technol, Sch Optoelect Engn, Changchun 130033, Jilin, Peoples R China
关键词
laser optics; telescope; space gravitational; wave detection; far-field phase; coupling coefficient;
D O I
暂无
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Objective Space-based gravitational-wave observatories (SGOs) promise to measure pico-meter variations in the gigameter separations of a triangular constellation. Telescopes play a crucial role in using transmitting and receiving laser beams measuring the constellation arms with heterodyne laser interferometry. The far- field phase noise induced by the coupling of the wavefront aberrations of optical telescopes with their pointing jitters is one of the major noise sources for the measurement. As phase noise suppression is a critical aspect for achieving the required comprehensive measuring stability, this paper theoretically analyzes the mechanism of the far- field phase noise, proposes an optimization strategy for the design of the optical telescopes in SGOs, and verifies it to pave the way for the comprehensive phase noise control in the design- to-manufacture process. Methods To analytically establish the relationship of the coupling coefficient with the aberrations in the form of polynomial expansions, the paper adopts the Fringe Zernike polynomials to represent the aberrations and further construct and describe the wavefront error. Then, the coupling coefficient defined as the modulus of the gradient of the far- field wavefront error is expressed as a polynomial function of the aberration coefficients and the tilt angles and is further simplified on the basis of the symmetry of the telescope. According to this relationship and the aberration characteristics of the telescope design residuals, the paper evaluates the effect of different aberrations on phase noise, revealing that defocus, primary astigmatism, and primary spherical aberration are the keys to controlling the coupling coefficient. Thus, an optimization strategy based on key aberration control is proposed. The performance of this method in far-field phase noise suppression is verified by examples of telescope design. Results and Discussions The wavefront quality of the telescopes before and after optimization (Table 1) by the above strategy is at the lambda./20 (lambda= 1064 nm) level. Before optimization, the far-field wavefront changes significantly within the range of +/- 100 nrad. Accordingly, the coupling coefficient increases rapidly with the tilt angle to over 1 pm/nrad. After optimization, although the wavefront residuals are slightly worse (Table 2), the range of far-field wavefront error decreases markedly by more than 90% (Fig. 4). The corresponding coupling coefficient is smaller than 0. 11 pm/ nrad within the range of +/- 100 nrad. It is only 6% of that before optimization and much smaller than the required value (Fig. 5). These results indicate that the optimization strategy based on aberration control can effectively reduce the coupling coefficient of the far-field phase noise, even in the case of poor wavefront quality. Conclusions On the basis of theoretical analysis of the mechanism of the far-field phase noise, this paper determines the relationship of the coupling coefficient with the aberrations, develops an optimization strategy based on key aberration control, and verifies the strategy. The results reveal that suppressing the key aberrations deliberately instead of simply enhancing the demand for wavefront quality in the optimization process can reduce the sensitivity of the far-field phase to jitters more efficiently, improve the far-field phase stability of the telescope significantly, and balance the severe noise budget and the design freedom of the telescope to reserve sufficient margin for the rest optics.
引用
收藏
页数:6
相关论文
共 50 条
  • [31] Back-reflection from a Cassegrain telescope for space-based interferometric gravitational-wave detectors
    Spector, Aaron
    Mueller, Guido
    CLASSICAL AND QUANTUM GRAVITY, 2012, 29 (20)
  • [32] P wave and far-field R wave detection in pacemaker patient atrial electrograms
    Theres, H
    Sun, WM
    Combs, V
    Panken, E
    Mead, H
    Baumann, G
    Stangl, K
    PACE-PACING AND CLINICAL ELECTROPHYSIOLOGY, 2000, 23 (04): : 434 - 440
  • [33] Calibrating signal-to-noise ratio detection thresholds using gravitational-wave catalogs
    Mould, Matthew
    Moore, Christopher J.
    Gerosa, Davide
    PHYSICAL REVIEW D, 2024, 109 (06)
  • [34] NOISE BEHAVIOR OF THE EXPLORER GRAVITATIONAL-WAVE ANTENNA DURING LAMBDA TRANSITION TO THE SUPERFLUID PHASE
    ASTONE, P
    BASSAN, M
    BONIFAZI, P
    COCCIA, E
    COSMELLI, C
    FRASCA, S
    MAJORANA, E
    MODENA, I
    PALLOTTINO, GV
    PIZZELLA, G
    RAPAGNANI, P
    RICCI, F
    VISCO, M
    CRYOGENICS, 1992, 32 (07) : 668 - 670
  • [35] Spherical near-field to far-field transformation by phase retrieval method
    Ohashi, Eriko
    Arai, Hiroyuki
    IEICE COMMUNICATIONS EXPRESS, 2013, 2 (08): : 325 - 329
  • [36] Research and analysis of a laser pointing jitter noise suppression system more compatible with space gravitational wave detection
    Cui, Zhao
    Wang, Xue
    Li, Haojie
    Qian, Xingguang
    Shi, Haoqi
    Ye, Zongjin
    Gao, Ruihong
    Jia, Jianjun
    Wang, Yikun
    Wang, Jianyu
    OPTICAL ENGINEERING, 2024, 63 (01)
  • [37] Phase Space Engineering in Optical Microcavities II. Controlling the far-field
    Poirier, Julien
    Painchaud-April, Guillaume
    Gagnon, Denis
    Dube, Louis J.
    2010 12TH INTERNATIONAL CONFERENCE ON TRANSPARENT OPTICAL NETWORKS (ICTON), 2011,
  • [38] Acoustic Far-Field Hypersonic Surface Wave Detection with Single Plasmonic Nanoantennas
    Berte, Rodrigo
    Della Picca, Fabricio
    Poblet, Martin
    Li, Yi
    Cortes, Emiliano
    Craster, Richard V.
    Maier, Stefan A.
    Bragas, Andrea V.
    PHYSICAL REVIEW LETTERS, 2018, 121 (25)
  • [39] STATIONARY PHASE METHOD FOR FAR-FIELD COMPUTATION OF DEFOCUSED REFLECTOR ANTENNAS
    HERBEN, MHAJ
    MIDDELKOOP, R
    GIELKENS, FJJ
    ELECTRONICS LETTERS, 1980, 16 (13) : 519 - 521
  • [40] Simple demonstration of visible evanescent-wave enhancement with far-field detection
    Ray, Emily A.
    Hampton, Meredith J.
    Lopez, Rene
    OPTICS LETTERS, 2009, 34 (13) : 2048 - 2050