4 Astronomers Capture First Image of a Black Hole. News release, European Southern Observatory, Apr. 10, 2019. www.eso.org/public/unitedkingdom/news/eso1907
5 Event Horizon Telescope. https://eventhorizontelescope.org
6 A. M. Ghez et al. The Accelerations of Stars Orbiting the Milky Way’s Central Black Hole. Nature. 407, no. 6802 (Sept. 2000): 349–351.
7 Supermassive Black Hole Sagittarius A*. NASA, Aug. 29, 2013. www.nasa.gov/mission_pages/chandra/multimedia/black-hole-SagittariusA.html
8 Event Horizon Telescope.
9 Supermassive Black Hole. COSMOS – The SAO Encyclopedia of Astronomy. http://astronomy.swin.edu.au/cosmos/S/Supermassive+Black+Hole
10 R. Pfeifle et al. A Triple AGN in a Mid-Infrared Selected Late Stage Galaxy Merger. ArXiv pre-print service, Aug. 7, 2019. https://iopscience.iop.org/article/10.3847/1538–4357/ab3a9b
11 Princeton Scientists Spot Two Supermassive Black Holes on Collision Course with Each Other. News release, Princeton University, July
12 G. Hobbs. Gravitational Wave Research Using Pulsar Timing Arrays. National Science Review. 4, no. 5 (Dec. 19, 2017): 707–717.
13 H. T. Cromartie et al. Relativistic Shapiro Delay Measurements.
14 Gravitational Wave Mission Selected, Planet-Hunting Mission Moves Forward. European Space Agency, June 20, 2017. https://sci.esa.int/web/cosmic-vision/-/59243‑gravitational-wave-mission-selectedplanet-hunting-mission-moves-forward
15 M. Bailes. MeerTime – the MeerKAT Key Science Program on Pulsar Timing. ArXiv pre-print service, Mar. 18, 2018. https://arxiv.org/abs/1803.07424
16 D. Goldberg. Why Can’t Einstein and Quantum Mechanics Get Along? Gizmodo, Sept. 8, 2013. https://io9.gizmodo.com/why-canteinstein-and-quantum-mechanics-get-along-799561829
17 E. Siegel. Dark Matter Winners and Losers in the Aftermath of LIGO. Medium, Dec. 19, 2017. https://medium.com/starts-with-a-bang/dark-matter-winners-and-losers-in-the-aftermath-of-ligo-f34ab04fcb
18 D. Perrodin. Radio Pulsars: Testing Gravity and Detecting Gravitational Waves. Physics and Astrophysics of Neutron Stars. (Jan. 10, 2019): 95–148.
19 M. Burgay. The Double Pulsar System in Its 8th Anniversary. ArXivpre-print service, Oct. 3, 2012. https://arxiv.org/abs/1210.0985
20 Там же.
21 S. Ransom et al. A Millisecond Pulsar in a Stellar Triple System. Nature. 505 (Jan. 23, 2014): 520–524.
22 Equivalence Principle. Encyclopaedia Britannica website. www.britannica.com/science/equivalence-principle
Глава 9. Быстрые радиовсплески, незавершенная глава
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2 E. Keane. High Time-Resolution Astrophysics. Jodrell Bank Observatory, University of Manchester, Apr. 17, 2008. www.jb.man.ac.uk/~ekean/my_damtp_presentation.pdf
3 J. O’Callaghan. Mysterious Outburst’s Quiet Cosmic Home
Yields More Questions Than Answers. Scientific American, June 27, 2019. www.scienticamerican.com/article/mysterious-outburstsquiet-cosmic-home-yields-more-questions-than-answers
4 K. Kellermann, B. Sheets. Serendipitous Discoveries.
5 C. Woolston. Microwave Oven Blamed for Radio-Telescope Signals. Nature. May 8, 2015. www.nature.com/news/microwave-ovenblamed-for-radio-telescope-signals-1.17510
6 H. W. Lin et al. Detecting Industrial Pollution in the Atmospheres of Earth-Like Exoplanets. Astrophysical Journal Letters. 792, no. 1 (Aug. 12, 2014).
7 D. Thornton et al. A Population of Fast Radio Bursts at Cosmological Distances. Science. 340, no. 6141 (July 5, 2013). https://arxiv.org/ftp/arxiv/papers/1307/1307.1628.pdf