38
H. Khozyem
References
1. Glikson AY (2014) Evolution of the atmosphere, fire and the anthropocene climate event
horizon. Springer briefs in earth sciences. ISSN 2191-5369, https://doi.org/10.1007/978-94007-7332-5
2. Solanki SK (2002) Solar variability and climate change: is there a link? Sol Phys 43:59–513
3. Pfeilsticker, K. (2006). Paleo-climate. Institut für Umweltphysik, Universität Heidelberg, INF
229, 69120 Heidelberg
4. Gradstein F, Ogg J, Smith A (2004) A geologic time scale. Cambridge University Press,
Cambridge, p 598
5. Hallam A, Wignall PB (1997) Mass extinctions and their aftermath. Oxford University Press,
Oxford
6. MacLeod N (2003) The causes of Phanerozoic extinctions. In: Rothschild LJ, Lister AM (eds)
Evolution on planet earth, the impact of the physical environment. Elsevier Books, Oxford,
pp 253–278
7. Sepkoski JJ (1996) Patterns of Phanerozoic extinction: a perspective from global data bases.
In: Walliser OH (ed) Global events and event stratigraphy. Springer, Berlin, pp 35–52
8. Glikson AY (2005) Asteroid/comet impact clusters, flood basalts and mass extinctions:
significance of isotopic age overlaps. Earth Planet Sci Lett 236:933–937
9. Courtillot VE, Rennes PR (2003) On the ages of flood basalt events. CR Geosci 335:113–140
10. Keller G (2005) Impacts volcanism and mass extinction: random coincidence or cause and
effect? Aust J Earth Sci 52:725–757
11. Gradstein MF, Ogg JG, Schmitz MD, Ogg GM (2012) The geologic time scale 2012, vol 1.
Elsevier, 1144 pp
12. Berner RA, Vanderbrook JM, Ward PD (2007) Oxygen and evolution. Science 316:557–558
13. Beerling DJ, Royer D (2011) Convergent cenozoic CO 2 history. Nat Geosci 4:418–420
14. Beerling DJ, Osborne CP, Chaloner WG (2001) Evolution of leaf-form in land plants linked
to atmospheric CO 2 decline in the Late Palaeozoic era. Nature 410:352–354
15. French BM (1998) Traces of catastrophe. Lunar Planet Inst 954:120
16. Glikson AY, Uysal IT (2013) Geophysical and structural criteria for the identification of buried
impact structures, with reference to Australia. Earth Sci Rev 125:114–122
17. Glikson AY, Uysal IT, Fitz Gerald JD, Saygin E (2013) Geophysical anomalies and quartz
microstructures, Eastern Warburton Basin, North-east South Australia: tectonic or impact
shock metamorphic origin? Tectonophysics 589:57–76
18. Pope KO, Baines KH, Ocampo AC, Ivanov BA (1997) Energy volatile production and climatic
effects of the Chicxulub Cretaceous/tertiary impact. J Geophys Res 102:21645–21664
19. Ward PD (2007) Under a green sky: global warming, the mass extinctions of the past, and
what they can tell us about our future. Harper Collins, New York, p 242
20. Ernst RE, Youbi N (2017) How large igneous Provinces affect global climate, sometimes cause
mass extinctions, and represent natural markers in the geological record. Palaeogeography,
palaeoclimatology, palaeoecology
21. Bond DP, Wignall PB, Joachimski MM, Sun Y, Savov I, Grasby SE,… Blomeier DP (2015)
An abrupt extinction in the Middle Permian (Capitanian) of the Boreal Realm (Spitsbergen)
and its link to anoxia and acidification. Geol Soc Am Bull 127(9–10):1411–1421
22. Bond DPG, Grasby SE (2016) On the causes of mass extinctions. Palaeogeogr Palaeoclimatol
Palaeoecol. https://doi.org/10.1016/j.palaeo.2016.11.005
23. Courtillot V, Fluteau F (2014) A review of the embedded time scales of flood basalt volcanism
with special emphasis on dramatically short magmatic pulses. In: Keller G, Kerr A (eds)
Volcanism, impacts, and mass extinctions: causes and effects. Geological Society of America
Special Paper 505, pp 301–317
24. Courtillot V, Fluteau F, Besse J (2015) Evidence for volcanism triggering extinctions: a short
history of IPGP contributions with emphasis on paleomagnetism. In: Schmidt A, Fristad KE,
Elkins Tanton LT (eds) Volcanism and global environmental change. Cambridge University
Press, Cambridge. ©
H. Khozyem
References
1. Glikson AY (2014) Evolution of the atmosphere, fire and the anthropocene climate event
horizon. Springer briefs in earth sciences. ISSN 2191-5369, https://doi.org/10.1007/978-94007-7332-5
2. Solanki SK (2002) Solar variability and climate change: is there a link? Sol Phys 43:59–513
3. Pfeilsticker, K. (2006). Paleo-climate. Institut für Umweltphysik, Universität Heidelberg, INF
229, 69120 Heidelberg
4. Gradstein F, Ogg J, Smith A (2004) A geologic time scale. Cambridge University Press,
Cambridge, p 598
5. Hallam A, Wignall PB (1997) Mass extinctions and their aftermath. Oxford University Press,
Oxford
6. MacLeod N (2003) The causes of Phanerozoic extinctions. In: Rothschild LJ, Lister AM (eds)
Evolution on planet earth, the impact of the physical environment. Elsevier Books, Oxford,
pp 253–278
7. Sepkoski JJ (1996) Patterns of Phanerozoic extinction: a perspective from global data bases.
In: Walliser OH (ed) Global events and event stratigraphy. Springer, Berlin, pp 35–52
8. Glikson AY (2005) Asteroid/comet impact clusters, flood basalts and mass extinctions:
significance of isotopic age overlaps. Earth Planet Sci Lett 236:933–937
9. Courtillot VE, Rennes PR (2003) On the ages of flood basalt events. CR Geosci 335:113–140
10. Keller G (2005) Impacts volcanism and mass extinction: random coincidence or cause and
effect? Aust J Earth Sci 52:725–757
11. Gradstein MF, Ogg JG, Schmitz MD, Ogg GM (2012) The geologic time scale 2012, vol 1.
Elsevier, 1144 pp
12. Berner RA, Vanderbrook JM, Ward PD (2007) Oxygen and evolution. Science 316:557–558
13. Beerling DJ, Royer D (2011) Convergent cenozoic CO 2 history. Nat Geosci 4:418–420
14. Beerling DJ, Osborne CP, Chaloner WG (2001) Evolution of leaf-form in land plants linked
to atmospheric CO 2 decline in the Late Palaeozoic era. Nature 410:352–354
15. French BM (1998) Traces of catastrophe. Lunar Planet Inst 954:120
16. Glikson AY, Uysal IT (2013) Geophysical and structural criteria for the identification of buried
impact structures, with reference to Australia. Earth Sci Rev 125:114–122
17. Glikson AY, Uysal IT, Fitz Gerald JD, Saygin E (2013) Geophysical anomalies and quartz
microstructures, Eastern Warburton Basin, North-east South Australia: tectonic or impact
shock metamorphic origin? Tectonophysics 589:57–76
18. Pope KO, Baines KH, Ocampo AC, Ivanov BA (1997) Energy volatile production and climatic
effects of the Chicxulub Cretaceous/tertiary impact. J Geophys Res 102:21645–21664
19. Ward PD (2007) Under a green sky: global warming, the mass extinctions of the past, and
what they can tell us about our future. Harper Collins, New York, p 242
20. Ernst RE, Youbi N (2017) How large igneous Provinces affect global climate, sometimes cause
mass extinctions, and represent natural markers in the geological record. Palaeogeography,
palaeoclimatology, palaeoecology
21. Bond DP, Wignall PB, Joachimski MM, Sun Y, Savov I, Grasby SE,… Blomeier DP (2015)
An abrupt extinction in the Middle Permian (Capitanian) of the Boreal Realm (Spitsbergen)
and its link to anoxia and acidification. Geol Soc Am Bull 127(9–10):1411–1421
22. Bond DPG, Grasby SE (2016) On the causes of mass extinctions. Palaeogeogr Palaeoclimatol
Palaeoecol. https://doi.org/10.1016/j.palaeo.2016.11.005
23. Courtillot V, Fluteau F (2014) A review of the embedded time scales of flood basalt volcanism
with special emphasis on dramatically short magmatic pulses. In: Keller G, Kerr A (eds)
Volcanism, impacts, and mass extinctions: causes and effects. Geological Society of America
Special Paper 505, pp 301–317
24. Courtillot V, Fluteau F, Besse J (2015) Evidence for volcanism triggering extinctions: a short
history of IPGP contributions with emphasis on paleomagnetism. In: Schmidt A, Fristad KE,
Elkins Tanton LT (eds) Volcanism and global environmental change. Cambridge University
Press, Cambridge. ©
