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Simulation of a Laser Tomography Adaptive Optics with Rayleigh Laser Guide Stars for the Satellite Imaging System

  • Received : 2020.12.07
  • Accepted : 2021.01.28
  • Published : 2021.04.25

Abstract

Adaptive optics (AO) systems are becoming more complex to improve their optical performance and enlarge their field of view, so it is a hard and time consuming process to set up and optimize the components of AO systems with actual implementation. However, simulations allow AO scientists and engineers to experiment with different optical layouts and components without needing to obtain and prepare them physically. In this paper, we introduce a new AO simulation named the Korea Adaptive Optics Simulation (KAOS), independently developed by LIG Nex1. We verified the performance of KAOS by comparing with other AO simulation tools. In the comparison simulation, we confirmed the results from KAOS and other AO simulation tools were very similar. Also, we proposed a laser tomography AO system with five Rayleigh laser guide stars (LGSs) optimized by using KAOS to overcome the disadvantages of the AO system with a single sodium LGS for the satellite imaging system. We verified the performance of the proposed AO system using KAOS, and the simulation result showed averaged Strehl ratio of 0.37.

Keywords

References

  1. J. M. Beckers, "Adaptive optics for astronomy: principles, performance, and applications," Annu. Rev. Astron. Astrophys. 31, 13-62 (1993). https://doi.org/10.1146/annurev.aa.31.090193.000305
  2. O. Guyon, "Extreme adaptive optics," Annu. Rev. Astron. Astrophys. 56, 315-355 (2018). https://doi.org/10.1146/annurev-astro-081817-052000
  3. A. Tokovinin, "Seeing improvement with ground-layer adaptive optics," Publ. Astron. Soc. Pac. 116, 941-951 (2004). https://doi.org/10.1086/424805
  4. J. M. Beckers, "Increasing the size of the isoplanatic patch with multiconjugate adaptive optics," ESO Conference and Workshop Proceedings 30, 693-703 (1988).
  5. J.-G. Cuby, S. Morris, T. Fusco, M. Lehnert, P. Parr-Burman, G. Rousset, J.-P. Amans, S. Beard, I. Bryson, M. Cohen, N. Dipper, C. Evans, M. Ferrari, E. Gendron, J.-L. Gimenez, D. Gratadour, P. Hastings, Z. Hubert, E. Hugot, P. Jagourel, P. Laporte, V. Lebrun, D. Le Mignant, F. Madec, R. Myers, B. Neichel, T. Morris, C. Robert, H. Schnetler, M. Swinbank, G. Talbot, W. Taylor, F. Vidal, S. Vives, P. Vola, N. Welikala, and M. Wells,"Eagle: a MOAO fed multi-IFU NIR workhorse for E-ELT," Proc. SPIE 7735, 77352D (2010). https://doi.org/10.1117/12.856820
  6. M. Hart, "Recent advances in astronomical adaptive optics," Appl. Opt. 49, D17-D29 (2010). https://doi.org/10.1364/AO.49.000D17
  7. J. H. Lee, S. E. Lee, and Y. J. Kong, "Performance prediction of a laser-guide star adaptive optics system for a 1.6 m telescope," Curr. Opt. Photon. 2, 269-279 (2018). https://doi.org/10.3807/COPP.2018.2.3.269
  8. Matlab® R2018b. The MathWorks Inc., Natick, Massachusetts (2018).
  9. J. D. Schmidt, Numerical simulations of optical wave propagation with examples in MATALB® (SPIE Press, Bellingham, WA, USA. 2010).
  10. D. P. Greenwood, "Bandwidth specification for adaptive optics systems," J. Opt. Soc. Am. 67, 390-393 (1977). https://doi.org/10.1364/JOSA.67.000390
  11. R. K. Tyson, Principles of Adaptive Optics, 4th ed., (CRC Press, Boca Raton, FL, USA. 2015).
  12. R. V. Shack, and B. C. Platt, "Production and use of lenticular Hartmann screen," J. Opt. Soc. Am. 61, 656 (1971).
  13. R. Ragazzoni, "Pupil plane wavefront sensing with an oscillating prism," J. Mod. Opt. 43, 289-293 (1996). https://doi.org/10.1080/09500349608232742
  14. K. Ahn, H.-G. Rhee, H.-S. Yang, and H. Kihm, "CVD SiC deformable mirror with monolithic cooling channels," Opt. Express 26, 9724-9739 (2018). https://doi.org/10.1364/OE.26.009724
  15. W. H. Southwell, "Wave-front estimation from wave-front slope measurements," J. Opt. Soc. Am. 70, 998-1006 (1980). https://doi.org/10.1364/JOSA.70.000998
  16. X. Cheng, J. Wang, X. Liu, L. Dong, and C. Liu, "Simulations and experiments on the noise suppression in the calibration of a 961-element adaptive optics system," Optik 200, 163419 (2020). https://doi.org/10.1016/j.ijleo.2019.163419
  17. L. Wang, X. Lin, X. Liu, and P. Wei, "Adaptive optics system based on the Southwell geometry and improvement on control stability," Opt. Commun. 390, 105-110 (2017). https://doi.org/10.1016/j.optcom.2016.12.076
  18. J. Hermann, "Least-squares wave front errors of minimum norm," J. Opt. Soc. Am. 70, 28-35 (1980). https://doi.org/10.1364/JOSA.70.000028
  19. K. Ahn, H.-G. Rhee, H.-J. Lee, J.-H. Lee, H. S. Yang, and H. Kihm, "Wave-front compensation using a silicon carbide deformable mirror with 37 actuators for adaptive optics," Korean J. Opt. Photon. 27, 106-113 (2016). https://doi.org/10.3807/KJOP.2016.27.3.106
  20. F. Vidal, E. Gendron, and G. Rousset, "Tomography approach for multi-object adaptive optics," J. Opt. Soc. Am. A 27, A253-A264 (2010).
  21. M. Le Louarn, C. Verinaud, V. Korkiakoski, and E. Fedrigo, "Parallel simulation tools for AO on ELTs," Proc. SPIE 5490, 705-712 (2004). https://doi.org/10.1117/12.551088
  22. L. Jolissaint, J.-P. Veran, and R. Conan, "Analytical modelling of adaptive optics: foundations of the phase spatial power spectrum approach," J. Opt. Soc. Am. A 23, 382-394 (2006). https://doi.org/10.1364/JOSAA.23.000382
  23. D. Gratadour, M. Puech, C. Verinaud, P. Kestener, M. Gray, C. Petit, J. Brule, Y. Clenet, F. Ferreira, E. Gendron, M. Laine, A. Sevin, G. Rousset, F. Hammer, I. Jegouzo, Michele Paillous, S. Taburet, Y. Yang, J.-L. Beuzit, A. Carlotti, M. Westphal, B. Epinat, M. Ferrari, T. Gautrais, J. C. Lambert, B. Neichel, and S. Rodionov, "COMPASS: an efficient, scalable and versatile numerical platform for the development of ELT AO systems," Proc. SPIE 9148, 91486O (2014). https://doi.org/10.1117/12.2056358
  24. R. Conan and C. Correia, "Object-oriented Matlab adaptive optics toolbox," Proc. SPIE 9148, 91486C (2014). https://doi.org/10.1117/12.2054470
  25. E. Marchetti, R. Brast, B. Delabre, R. Donaldson, E. Fedrigo, C. Frank, N. Hubin, J. Kolb, J.-L. Lizon, M. Marchesi, S. Oberti, R. Reiss, C. Soenke, S. Tordo, A. Baruffolo, P. Bagnara, A. Amorim, and J. Lima, "MAD on sky results in star oriented mode," Proc. SPIE 7015, 70150F (2008). https://doi.org/10.1117/12.787240
  26. A. Reeves, "Soapy: an adaptive optics simulation written purely in Python for rapid concept development," Proc. SPIE 9909, 99097F (2016). https://doi.org/10.1117/12.2232438
  27. L. A. Thompson and C. S. Gardner, "Experiments on laser guide stars at Mauna Kea Observatory for adaptive imaging in astronomy," Nature 328, 229-231 (1987). https://doi.org/10.1038/328229a0
  28. C. A. Primmerman, D. V. Murphy, D. A. Page, B. G. Zollars, and H. T. Barclay, "Compensation of atmospheric optical distortion using a synthetic beacon," Nature 353, 141-143 (1991). https://doi.org/10.1038/353141a0
  29. L. A. Thompson and R. M. Castle, "Experimental demonstration of a Rayleigh-scattered laser guide star at 351 nm," Opt. Lett. 17, 1485-1487 (1992). https://doi.org/10.1364/OL.17.001485
  30. S. Rabien, N. Ageorges, L. Barl, U. Beckmann, T. Blumchen, M. Bonaglia, J. Borelli, J. Brynnel, L. Busoni, L. Carbonaro, R. Davies, M. Deysenroth, O. Durney, M. Elberich, S. Esposito, V. Gasho, W. Gassler, H. Gemperlein, R. Genzel, R. Green, M. Haug, M. L. Hart, P. Hubbard, S. Kanneganti, E. Masciadri, J. Noenickx, G. Orban de Xivry, D. Peter, A. Quirrenbach, M. Rademacher, H. W. Rix, P. Salinari, C. Schwab, J. Storm, L. Struder, M. Thiel, G. Weigelt, and J. Ziegleder, "ARGOS: the laser guide star system for the LBT," Proc. SPIE 7736, 77360E (2010). https://doi.org/10.1117/12.857210
  31. C. Benn, D. Abrams, T. Agocs, D. Cano, T. Gregory, J. C. Guerra, O. Martin, T. Moris, R. Myers, S. Rix, R. Rutten, I. Skillen, J. Skvarc, and S. Tulloch, "GLAS/NAOMI: ground-layer AO at the William Herschel Telescope," Proc. SPIE 7015, 701523 (2008). https://doi.org/10.1117/12.788990
  32. T. J. Morris, "An experimental Rayleigh laser guide star ground layer adaptive optics system for the William Herschel Telescope," Ph. D. dissertation, University of Durham, England (2005).