Imaging extended sources with the solar gravitational lens

被引:26
|
作者
Turyshev, Slava G. [1 ]
Toth, Viktor T. [1 ]
机构
[1] CALTECH, Jet Prop Lab, 4800 Oak Grove Dr, Pasadena, CA 91109 USA
基金
美国国家航空航天局;
关键词
D O I
10.1103/PhysRevD.100.084018
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We investigate the optical properties of the solar gravitational lens (SGL) with respect to an extended source located at a large but finite distance from the Sun. The static, spherically symmetric gravitational field of the Sun is modeled within the first post-Newtonian approximation of the general theory of relativity. We consider the propagation of monochromatic electromagnetic (EM) waves near the Sun. We develop, based on a Mie theory, a vector theory of diffraction that accounts for the refractive properties of the solar gravitational field. The finite distance to a point source can be accounted for using a rotation of the coordinate system to align its polar axis with the axis directed from the point source to the center of the Sun, which we call the optical axis. We determine the EM field and study the key optical properties of the SGL in all four regions formed behind the Sun by an EM wave diffracted by the solar gravity field: the shadow, geometric optics, and weak and strong interference regions. Extended sources can then be represented as collections of point sources. We present the power density of the signal received by a telescope in the image plane. Our discussion concludes with considering the implications for imaging with the SGL.
引用
收藏
页数:23
相关论文
共 50 条
  • [31] Extended source diffraction effects near gravitational lens fold caustics
    Zabel, SA
    Peterson, JB
    ASTROPHYSICAL JOURNAL, 2003, 594 (01): : 456 - 463
  • [32] Gravity.jl: Fast and accurate gravitational lens modeling in Julia: I. Point-like and linearized extended sources
    Lombardi, Marco
    Astronomy and Astrophysics, 2024, 690
  • [33] Gravity.jl: Fast and accurate gravitational lens modeling in Julia I. Point-like and linearized extended sources
    Lombardi, Marco
    ASTRONOMY & ASTROPHYSICS, 2024, 690
  • [34] CANDIDAIE GRAVITATIONAL MICROLENSING EVENTS FOR FUTURE DIRECT LENS IMAGING
    Henderson, C. B.
    Park, H.
    Sumi, T.
    Udalski, A.
    Gould, A.
    Tsapras, Y.
    Han, C.
    Gaudi, B. S.
    Bozza, V.
    Abe, F.
    Bennett, D. P.
    Bond, I. A.
    Botzler, C. S.
    Freeman, M.
    Fukui, A.
    Fukunaga, D.
    Itow, Y.
    Koshimoto, N.
    Ling, C. H.
    Masuda, K.
    Matsubara, Y.
    Muraki, Y.
    Namba, S.
    Ohnishi, K.
    Rattenbury, N. J.
    Saito, To
    Sullivan, D. J.
    Suzuki, D.
    Sweatman, W. L.
    Tristram, P. J.
    Tsurumi, N.
    Wada, K.
    Yamai, N.
    Yock, P. C. M.
    Yonehara, A.
    Szymanski, M. K.
    Kubiak, M.
    Pietrzynski, G.
    Soszynski, I.
    Skowron, J.
    Kozlowski, S.
    Poleski, R.
    Ulaczyk, K.
    Wyrzykowski, L.
    Pietrukowicz, P.
    Almeida, L. A.
    Bos, M.
    Choi, J. -Y.
    Christie, G. W.
    Depoy, D. L.
    ASTROPHYSICAL JOURNAL, 2014, 794 (01):
  • [35] CHITAH: STRONG-GRAVITATIONAL-LENS HUNTER IN IMAGING SURVEYS
    Chan, James H. H.
    Suyu, Sherry H.
    Chiueh, Tzihong
    More, Anupreeta
    Marshall, Philip J.
    Coupon, Jean
    Oguri, Masamune
    Price, Paul
    ASTROPHYSICAL JOURNAL, 2015, 807 (02):
  • [37] Optimum apodization for speckle imaging of extended sources
    Keller, CU
    HIGH RESOLUTION SOLAR PHYSICS: THEORY, OBSERVATIONS, AND TECHNIQUES, 1999, 183 : 342 - 348
  • [38] GRAVITATIONAL LENS
    SMITH, FG
    NATURE, 1979, 279 (5712) : 374 - 375
  • [39] GRAVITATIONAL LENS
    HIGBIE, J
    AMERICAN JOURNAL OF PHYSICS, 1981, 49 (07) : 652 - 655
  • [40] Mission Architecture to Reach and Operate at the Focal Region of the Solar Gravitational Lens
    Helvajian, Henry
    Rosenthal, Alan
    Poklemba, John
    Battista, Thomas A. A.
    DiPrinzio, Marc D. D.
    Neff, Jon M. M.
    McVey, John P. P.
    Toth, Viktor T. T.
    Turyshev, Slava G. G.
    JOURNAL OF SPACECRAFT AND ROCKETS, 2023, 60 (03) : 829 - 847