Читать книгу Planet Formation and Panspermia - Группа авторов - Страница 19
References
Оглавление[2.1] Adams, F.C., Hollenbach, D., Laughlin, G., Gorti, U., Photoevaporation of Circumstellar Disks Due to External Far-Ultraviolet Radiation in Stellar Aggregates. Astrophys. J., 611, 360–379, 2004.
[2.2] Adams, F.C. and Spergel, D.N., Lithospanspermia in Star-Forming clusters. Astrobiology, 5, 497–514, 2005.
[2.3] Arrhenius, S., Panspermy: the transmission of life from star to star. Sci. Am., 9, 196, 1907.
[2.4] Balbi, A. and Tombesi, F., The habitability of the Milky Way during the active phase of its central supermassive black hole. Sci. Rep., 7, 1, #16626, 2017.
[2.5] Balbi, A. and Grimaldi, C., Quantifying the information impact of future searches for exoplanetary biosignatures. Proc. Natl. Acad. Sci., 117, 35, 21031–21036, 2020.
[2.6] Balbi, A., Hami, M., Kovačević, A., The Habitability of the Galactic Bulge. Life, 10, 8, 132, 2020.
[2.7] Belbruno, E., Moro-Martín, A., Malhotra, R., Savransky, D., Chaotic Exchange of Solid Material Between Planetary Systems: Implications for Lithopanspermia. Astrobiology, 12, 754–774, 2012.
[2.8] Chen, H., Forbes, J.C., Loeb, A., Habitable Evaporated Cores and the Occurrence of Panspermia Near the Galactic Center. Astrophys. J. Lett., 855, 1, L1, 2018.
[2.9] Dick, S.J., The Biological Universe: The Twentieth-Century Extraterrestrial Life Debate and the Limits of Science, Cambridge University Press, Cambridge, 1996.
[2.10] Đošović, V., Vukotić, B., Ćirković, M.M., Advanced aspects of Galactic habitability. Astron. Astrophys., 625, A98, 2019.
[2.11] Forgan, D., Dayal, P., Cockell, C., Libeskind, N., Evaluating galactic habitability using high-resolution cosmological simulations of galaxy formation. Int. J. Astrobiology, 16, 1, 60–73, 2017.
[2.12] Fujii, Y., Angerhausen, D., Deitrick, R. et al., Exoplanet Biosignatures: Observational Prospects. Astrobiology, 18, 739, 2018.
[2.13] Ginsburg, I., Lingam, M., Loeb, A., Galactic Panspermia. Astrophys. J., 868, 1, L12, 2018.
[2.14] Gonzalez, G., Brownlee, D., Ward, P., The Galactic Habitable Zone: Galactic Chemical Evolution. Icarus, 152, 185–200, 2001.
[2.15] Gowanlock, M.G., Patton, D.R., McConnell, S.M., A model of habitability within the Milky Way galaxy. Astrobiology, 11, 855–873, 2011.
[2.16] Gowanlock, M.G. and Morrison, I.S., The Habitability of Our Evolving Galaxy, in: Habitability of the Universe Before Earth, R. Gordon and A.A. Sharov (Eds.), 2018, series: Astrobiology: Exploring Life on Earth and Beyond, P. H. Rampelotto, J. Seckbach, R. Gordon (Eds.), Elsevier B.V., Amsterdam, 149.
[2.17] Grenfell, J.L., A review of exoplanetary biosignatures. Phys. Rep., 713, 1–17, 2017.
[2.18] Horneck, G., Stöffler, D., Ott, S., Hornemann, U., Cockell, C.S., Moeller, R., Meyer, C., de Vera, J.-P., Fritz, J., Schade, S., Artemieva, N.A., Microbial rock inhabitants survive hypervelocity impacts on mars-like host planets: First phase of lithopanspermia experimentally tested. Astrobiology, 8, 1, 17–44, 2008.
[2.19] Horneck, G., Klaus, D.M., Mancinelli, R.L., Space Microbiology, Microbiology and Molecular Biology Reviews. Am. Soc. Microbiol., 74, 1, 121–156, 2010.
[2.20] Krijt, S., Bowling, T.J., Lyons, R.J., Ciesla, F.J., Fast Litho-panspermia in the Habitable Zone of the TRAPPIST-1 System. Astrophys. J., 839, 2, #L21, 2017.
[2.21] Lin, H.W. and Loeb, A., Statistical signatures of panspermia in exoplanet surveys. Astrophys. J. Lett., 810, 1, #L3, 2015.
[2.22] Lineweaver, C.H., Fenner, Y., Gibson, B.K., The Galactic Habitable Zone and the Age Distribution of Complex Life in the Milky Way. Science, 303, 5654, 59–62, 2004.
[2.23] Lingam, M. and Loeb, A., Enhanced interplanetary panspermia in the TRAPPIST-1 system. Proc. Natl. Acad. Sci. U.S.A., 114, 26, 6689–6693, 2017.
[2.24] Lingam, M. and Loeb, A., Implications of Captured Interstellar Objects for Panspermia and Extraterrestrial Life. Astron. J., 156, 5, 193, 2018.
[2.25] Lingam, M., Ginsburg, I., Bialy, S., Active Galactic Nuclei: Boon or Bane for Biota? Astrophys. J., 877, 1, 62, 2019.
[2.26] Madhusudhan, N., Exoplanetary Atmospheres: Key Insights, Challenges, and Prospects. Annu. Rev. Astron. Astrophys., 57, 617, 2019.
[2.27] Meech, K.J., Weryk, R., Micheli, M., Kleyna, J.T., Hainaut, O.R., Jedicke, R., Wainscoat, R.J., Chambers, K.C., Keane, J.V., Petric, A., Denneau, L., Magnier, E., Berger, T., Huber, M.E., Flewelling, H., Waters, C., SchunovaLilly, E., Chastel, S., A brief visit from a red and extremely elongated interstellar asteroid. Nature, 552, 7685, 378–381, 2017.
[2.28] Melosh, H.J., The rocky road to panspermia. Nature, 332, 687–688, 1988.
[2.29] Melosh, H.J., Exchange of meteorites (and life?) between stellar systems. Astrobiology, 3, 1, 207–215, 2003.
[2.30] Mileikowsky, C., Cucinotta, F.A., Wilson, J.W., Gladman, B., Horneck, G., Lindegren, L., Melosh, J., Rickman, H., Valtonen, M., Zheng, J.Q., Natural Transfer of Viable Microbes in Space: 1. From Mars to Earth and Earth to Mars. Icarus, 145, 2, 391–427, 2000.
[2.31] Morrison, I.S. and Gowanlock, M.G., Extending Galactic Habitable Zone Modeling to Include the Emergence of Intelligent Life. Astrobiology, 15, 8, 683–696, 2015.
[2.32] Nyquist, L.E., Bogard, D.D., Shih, C.-Y., Greshake, A., Stöffler, D., Eugster, O., Ages and Geologic Histories of Martian Meteorites. Space Sci. Rev., 96, 105–164, 2001.
[2.33] Onofri, S., de la Torre, R., de Vera, J.-P., Ott, S., Zucconi, L., Selbmann, L., Scalzi, G., Venkateswaran, K.J., Rabbow, E., Sánchez, I., Francisco, J., Horneck, G., Survival of rock-colonizing organisms after 1.5 years in outer space. Astrobiology, 12, 5, 508–516, 2012.
[2.34] Owen, J.E., Atmospheric Escape and the Evolution of Close-in Exoplanets. Annu. Rev. Earth Planet. Sci., 47, 1, 67–90, 2019.
[2.35] Pacetti, E., Balbi, A., Lingam, M., Tombesi, F., Perlman, E., The Impact of Tidal Disruption Events on Galactic Habitability. Mon. Notices R. Astron. Soc., 498, 3, 3153–3157, 2020.
[2.36] Prantzos, N., On the “galactic habitable zone”. Space Sci. Rev., 135, 313–322, 2008.
[2.37] Savino, A., Koch, Z., Prudil, A., Kunder, A., Smolec, R., The Age of the Milky Way Inner Stellar Spheroid from RR Lyrae Population Synthesis. Astron. Astrophys., 641, A96, 2020.
[2.38] Seager, S., The future of spectroscopic life detection on exoplanets. Proc. Natl. Acad. Sci. U.S.A., 111, 35, 12634–12640, 2014.
[2.39] Siraj, A. and Loeb, A., Transfer of Life Between Earth and Venus with Planet-Grazing Asteroids. ArXiv:2009.09512, 2020, https://arxiv.org/pdf/2009.09512.pdf.
[2.40] Tsujimoto, T. and Baba, J., Remarkable Migration of the Solar System from the Innermost Galactic Disk; a Wander, a Wobble, and a Climate Catastrophe on the Earth. Astrophys. J., 904, 2, #137, 2020.
[2.41] Vukotić, B., Steinhauser, D., Martinez-Aviles, G., Ćirković, M.M., Micic, M., Schindler, S., “Grandeur in this view of life”: N-body simulation models of the Galactic habitable zone. Mon. Notices R. Astron. Soc., 459, 3512–3524, 2016.
[2.42] Wallis, M.K. and Wickramasinghe, N.C., Interstellar transfer of planetary microbiota. Mon. Notices R. Astron. Soc., 348, 1, 52–61, 2004.
[2.43] Wesson, P.S., Panspermia, Past and Present: Astrophysical and Biophysical Conditions for the Dissemination of Life in Space. Space Sci. Rev., 156, 1–4, 239–252, 2010.
[2.44] Zhu, W., Udalski, A., Novati, S.C., Chung, S.-J., Jung, Y.K., Ryu, Y.-H., Shin, I.-G., Gould, A., Lee, C.-U., Albrow, M.D., Yee, J.C., Han, C., Hwang, K.-H., Cha, S.-M., Kim, D.-J., Kim, H.-W., Kim, S.-L., Kim, Y.-H., Lee, Y., Park, B.-G., Pogge, R.W., KMTNet Collaboration, Poleski, R., Mróz, P., Pietrukowicz, P., Skowron, J., Szymański, M.K., KozLowski, Ulaczyk, K., Pawlak, M., OGLE Collaboration, Beichman, C., Bryden, G., Carey, S., Fausnaugh, M., Gaudi, B.S., Henderson, C.B., Shvartzvald, Y., Wibking, B., Spitzer Team, Toward a Galactic Distribution of Planets. I. Methodology and Planet Sensitivities of the 2015 High-cadence Spitzer Microlens Sample. Astron. J., 154, 5, #210, 2017.
[2.45] Zubrin, R., Interstellar panspermia reconsidered. J. Br. Interplanet. Soc., 54, 7–8, 262–269, 2001.
[2.46] Zubrin, R., Exchange of material between solar systems by random stellar encounters. Int. J. Astrobiology, 19, 1, 43–48, 2019.
Email: balbi@roma2.infn.it