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Predictions and Possible Solutions for the Sustainability of Mars Settlement

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1. Yazıcı, A. M., and Darıcı, S. The New Opportunities in Space Economy. Journal of the Human and Social Science Research 8(4), 2019, pp. 3252-3271.10.15869/itobiad.615134 Search in Google Scholar

2. Yazıcı, A. M., and Tiwari, S. Space Tourism: An Initiative Pushing Limits. Journal of Tourism, Leisure and Hospitality 3(1), 2021, pp. 38-46.10.48119/toleho.862636 Search in Google Scholar

3. NASA. NASA’s Perseverance Mars Rover Extracts First Oxygen from Red Planet. 2021, https://www.nasa.gov/press-release/nasa-s-perseverance-mars-roverextracts-first-oxygen-from-red-planet Search in Google Scholar

4. NASA. NASA’s Ingenuity Mars Helikopter Logs Second Successful Flight. 2021, https://www.nasa.gov/feature/jpl/nasa-s-ingenuity-mars-helicopter-logssecond-successful-flight Search in Google Scholar

5. Mann, A. Crewed launch deepens ties between NASA and SpaceX. Science 368, 2020, pp. 811-812.10.1126/science.368.6493.81132439772 Search in Google Scholar

6. Yazıcı, A. M. An Investigation on The Economic Feasibility of Space Elevator. Journal of Aviation and Aerospace Studies 1(1), 2020, pp. 33-47. Search in Google Scholar

7. Musk, E. Making life multi-planetary. New Space 6(1), 2018, pp. 2-11.10.1089/space.2018.29013.emu Search in Google Scholar

8. Szocik, K. Should and could humans go to Mars? Yes, but now and not in the near future. Futures 105, 2019, pp. 54-66.10.1016/j.futures.2018.08.004 Search in Google Scholar

9. Sagan C. Pale Blue Dot: A Vision of the Human Future in Space. Ballantine Books, 1997. Search in Google Scholar

10. Turchin, A., and Green, B. P. Aquatic refuges for surviving a global catastrophe. Futures 89, 2017, pp. 26-37.10.1016/j.futures.2017.03.010 Search in Google Scholar

11. Baum, S. D., Denkenberger, D. C., and Haqq-Misra, J. Isolated refuges for surviving global catastrophes. Futures 72, 2015, pp. 45-56.10.1016/j.futures.2015.03.009 Search in Google Scholar

12. Shapiro, R. A new rationale for returning to the Moon?, Protecting civilization with a sanctuary. Space Policy 25, 2009, pp. 1-5.10.1016/j.spacepol.2008.12.002 Search in Google Scholar

13. Zeitlin, C., Hassler, D. M., Cucinotta, F. A., Ehresmann, B., Wimmer-Schweingruber, R. F., Brinza, D. E., Kang, S., Weigle, G., Böttchers, S., Böhm, E., Burmeister, S., Guo, J., Köhler, J., Martin, C., Posner, A., Rafkin, S., and Reitz, G. Measurements of Energetic Particle Radiation in Transit to Mars on the Mars Science Laboratory. Science 340:1080, 2013.10.1126/science.123598923723233 Search in Google Scholar

14. Petrov, G. I. A Permanent Settlement on Mars: The First Cut in The Land of a New Frontier. Master of Architecture at the Massachusetts Institute of Technology, 2004. Search in Google Scholar

15. NASA. Follow NASA’s Perseverance Rover in Real Time on Its Way to Mars. 2020, Nasa.gov/feature/jpl/follow-nasas-perseverance-rover-in-realtime-on-its-way-to-mars Search in Google Scholar

16. Amiri, H. E. S., Brain, D., Sharaf, O., Withnell, P., McGrath, M., Alloghani, M., and Al Awadhi, M. The emirates Mars mission. Space Science Reviews 218, 1, 2022, pp. 1-46.10.1007/s11214-021-00868-x883099335194256 Search in Google Scholar

17. Mallapaty, S. China’s successful launch of Mars mission seals global era in deep-space exploration. Nature 583:671, 2020.10.1038/d41586-020-02187-732704102 Search in Google Scholar

18. Knutsen, E. W., Villanueva, G. L., Liuzzi, G., Crismani, M. M. J., Mumma, M. J., Smith, M. D., Vandaele, A. C., Aoki, S., Thomas, I. R., Daerden, F., Viscardy, S., Erwin, J. T., Trompet, L., Neary, L., Ristic, B., Lopez-Valverde, M. A., Lopez-Moreno, J. J., Patel, M. R., Karatekin, O., and Bellucci, G. Comprehensive investigation of Mars methane and organics with ExoMars/NOMAD. Icarus 357:114266, 2021.10.1016/j.icarus.2020.114266 Search in Google Scholar

19. Levchenko, I., Xu, S., Mazouffre, S., Keidar, M., and Bazaka, K. Mars Colonization: Beyond Getting There. Global Challenges 3, 2019, pp. 1-11.10.1002/gch2.201800062638396431565356 Search in Google Scholar

20. Szocik, K., Abood, S., Impey, C., Shelhamer, M., Haqq-Misra, J., Persson, E., Oviedo, L., Capova, K. A., Braddock, M., Rappaport, M. B., and Corbally, C. Visions of a Martian future. Futures 117:102514, 2020.10.1016/j.futures.2020.102514 Search in Google Scholar

21. Doo-Hwan, K. Proposal of Establishing a New International Space Agency for Mining the Natural Resources in the Moon, Mars and Other Celestial Bodies. The Korean Journal of Air & Space Law and Policy 35(12), 2020, pp. 313-374.10.31691/KASL35.2.11. Search in Google Scholar

22. Stoner, I. Humans Should Not Colonize Mars. Journal of the American Philosophical Association 3(3), 2017, pp. 334-353.10.1017/apa.2017.26 Search in Google Scholar

23. Orwig, J. 5 undeniable reasons humans need to colonize Mars- even though it’s going to cost billions. 2015, https://www.businessinsider.com/5-undeniable-reasons-why-humansshould-go-to-mars-2015-4 Search in Google Scholar

24. NASA. NASA’s Journet to Mars Pioneering Next Steps in Space Exploration. 2015, nasa.gov/sites/default/files/journey-to-mars-next-steps-20151008_508.pdf. Search in Google Scholar

25. Greenblatt, J., and Anzaldua, A. How space technology benefits the Earth. Space Review. 2019, https://www.thespacereview.com/article/3768/1 Search in Google Scholar

26. Pyne, S. J. Seeking Newer Worlds: The Future of Exploration. 2003, https://faculty.washington.edu/mccurdy/SciencePolicy/Pyne%20New%20Worlds.pdf Search in Google Scholar

27. Sirivolu, S. A Constitutional Political Economy Perspective On The Colonization Of Mars. University of Pennsylvania Scholarly Commons. Philosophy Politics and Economics. Honors Theses (PPE) 22, 2016. Search in Google Scholar

28. Linck, E., Crane, K. W., Zuckerman, B. L., Corbin, B. A., Myers, R. M., Williams, S. R., Carioscia, S. A., Garcia, R., and Lal, B. Evaluation of a Human Mission to Mars by 2033. IDA Science & Technology Policy Institute, 2019. Search in Google Scholar

29. Wójtowicz, T., and Szocik, K. Democracy or What? Political system on the planet Mars after its colonization. Techological Forecasting and Social Change 166, 2021, pp. 1-6.10.1016/j.techfore.2021.120619 Search in Google Scholar

30. Strickland, J. Why a business case for Mars settlement is not required. The Space Review. 2020, https://www.thespacereview.com/article/3908/1 Search in Google Scholar

31. Zubrin, R. Why We Earthling Should Colonize Mars!. Theology and Science 17(3), 2019, pp. 305-316.10.1080/14746700.2019.1632519 Search in Google Scholar

32. Zubrin, R. The Case For Mars. New York: Free Press, 2021. Search in Google Scholar

33. Knappenberger, C. An Economic Analysis of Mars Exploration and Colonization. Student research 28, 2015. Search in Google Scholar

34. Llorente, B. How to grow crops on Mars if we are to live on the red planet. The Conversation. 2018, theconversation.com/how-to-grow-crops-on-mars-if-we-are-to-live-on-the-red-planet-99943. Search in Google Scholar

35. Cannon, K. M., Britt, D. T. Feeding on million people on Mars. New Space 7(4), 2019, pp. 245-254.10.1089/space.2019.0018 Search in Google Scholar

36. Nangle, S. N., Wolfson, M. Y., Hartsough, L., Ma, N. J., Mason, C. E., Merighi, M., Nathan, V., Silver, P. A., Simon, M., Swett, J., Thompson, D. B., and Ziesack, M. The case for biotech on Mars. Nature Biotechnology 38, 2020, pp. 401-407.10.1038/s41587-020-0485-432265561 Search in Google Scholar

37. Menezes, A. A., Cumbers, J., Hogan, J. A., and Arkin, A. P. Towards synthetic biological approaches to resource utilization on space missions. J. R. Soc. Interface 12:20140715, 2015.10.1098/rsif.2014.0715427707325376875 Search in Google Scholar

38. Granath, B. Lunar Martian Greenhouses Designed to Mimic Those on Earth. NASA. 2017, nasa.gov/feature/lunar-martian-greenhouses-designed-to-mimic-those-on-earth. Search in Google Scholar

39. Llorente, B., Williams, T. C., and Goold, H. D. The Multiplanetary Future of Plant Synthetic Biology. Genes 9:348, 2018.10.3390/genes9070348607103129996548 Search in Google Scholar

40. Haseloff, J., and Ajioka, J. Synhetic biology: history, challenges and prospects. J. R. Soc. Interface 6, 2009, pp. 389-391.10.1098/rsif.2009.0176.focus284396419493895 Search in Google Scholar

41. Bruhns, S., and Haqq-Misra, J. A Pragmatic approach to sovereignty on Mars. Space Policy 38, 2016, pp. 57-63.10.1016/j.spacepol.2016.05.008 Search in Google Scholar

42. Klein, E. Here’s the unusual way Elon Musk would make laws on Mars. Vox. 2016, https://www.vox.com/2016/6/2/11837770/heres-the-unusual-way-elon-musk-would-make-laws-on-mars Search in Google Scholar

43. Tosun, C., and Keskin, F. Teknokratik Teori: Tarihsel perspektifte temel temalar. Verimlilik Dergisi 1, 2013, pp. 107-122. Search in Google Scholar

44. Kim, C. H., and Choi, Y. B. How Meritocracy is Defined Today?: Contemporary Aspects of Meritocracy. Economics and Sociology 10(1), 2017, pp. 112-121.10.14254/2071-789X.2017/10-1/8 Search in Google Scholar

45. Szocik, K., Marques, R. E., Abood, S., Kedzior, A., Lysenko-Ryba, K., and Minich, D. Biological and social challenges of human reproduction in a long-term Mars base. Futures 100, 2018, pp. 56-62.10.1016/j.futures.2018.04.006 Search in Google Scholar

46. Freese, S., Reddy, A. P., and Lehnhardt, K. Radiation Impacts on Human Health During Spaceflight Beyond Low Earth Orbit. REACH 2-4, 2016, pp. 1-7.10.1016/j.reach.2016.11.002 Search in Google Scholar

47. NASA. Rodent Research. 2017, https://www.nasa.gov/ames/rodent-research Search in Google Scholar

48. Andreev-Andrievskiy, A., Popova, A., Boyle, R., Alberts, J., Shenkman, B., Vinogradova, O., Dolgov, O., Anokhin, K., Tsvirkun, D., Soldatov, P., Nemirovskaya, T., llyin, E., and Sychev, V. Mice in Bion-M 1 Space Mission: Training and Selection. PLoS ONE 9(8):e104830, 2014.10.1371/journal.pone.0104830 Search in Google Scholar

49. Sandonà, D., Desaphy, J. F., Camerino, G. M., Bianchini, E., Ciciliot, S., Danieli-Betto, D., Dobrowolny, G., Furlan, S., Germinario, E., Goto, K., Gutsmann, M., Kawano, F., Nakai, N., Ohira, T., Ohno, Y., Picard, A., Salanova, M., Schiffl, G., Blottner, D., Musarò, A., Ohira, Y., Betto, R., Conte, D., and Schiaffino, S. Adaptation of Mouse Skeletal Muscle to Long-Term Microgravity in the MDS Mission. PLoS ONE 7(3):e33232, 2012.10.1371/journal.pone.0033232331465922470446 Search in Google Scholar

50. Matsumura, T., Noda, T., Muratani, M., Okada, R., Yamane, M., Isotani, A., Kudo, T., Takahashi, S., and Ikawa, M. Male mice, caged in the International Space Station for 35 days, sire healthy offspring. Scientific Reports 9:13733, 2019.10.1038/s41598-019-50128-w676020331551430 Search in Google Scholar

51. Wakayama, S., Kamada, Y., Yamanaka, K., Kohda, T., Suzuki, H., Shimazu, T., Tada, M. N., Osada, I., Nagamatsu, A., Kamimura, S., Nagatomo, H., Mizutani, E., Ishino, F., Yano, S., and Wakayama, T. Healthy offspring from freeze-dried mouse spermatozoa held on the International Space Station for 9 months. PNAS 114:23, 2017.10.1073/pnas.1701425114546861428533361 Search in Google Scholar

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