42
H. Khozyem
90. Keller G, Adatte T, Bhowmick PK, Upadhyay H, Dave A, Reddy AN, Jaiprakash BC (2012)
Nature and timing of extinctions in Cretaceous-Tertiary planktic foraminifera preserved in
Deccan intertrappean sediments of the Krishna-Godavari Basin, India. Earth Planet Sci Lett
341:211–221
91. Petersen SV, Dutton A, Lohmann KC (2016) End-Cretaceous extinction in Antarctica linked
to both Deccan volcanism and meteorite impact via climate change. Nat Commun 7
92. Ponte JMN (2013) Magnetic mineralogy of Cretaceous-Tertiary sections (Tethys, Iran and
India): links with the Deccan Phase-2 (Doctoral dissertation)
93. Renne P, Sprain C, Pande K, Richards M, Vanderkluysen L, Self S (2016) Tempo of the
Deccan Traps eruptions in relation to events at the Cretaceous-Paleogene boundary. In EGU
general assembly conference abstracts (18, 9496)
94. Renne P, Sprain CJ, Richards MA, Self S, Vanderkluysen L, Pande K (2015) State shift
in Deccan volcanism at the Cretaceous-Paleogene boundary, possibly induced by impact.
Science 350(6256):76–78
95. Robinson N, Ravizza G, Coccioni R, Peucker-Ehrenbrink B, Norris R (2009) A highresolution marine 187 Os/188 Os record for the late Maastrichtian: Distinguishing the
chemical fingerprints of Deccan volcanism and the KP impact event. Earth Planet Sci Lett
281(3):159–168
96. Zachos J, Pagani M, Sloan L, Thomas E, Billups K (2001) Trends, rhythms, and aberrations
in global climate 65 Ma to present. Science 292:686–693
97. Katz ME, Pak DK, Dickens GR, Miller KG (1999) The source and fate of massive carbon
input during the Latest Paleocene thermal maximum. Science 286:1531–1533
98. Zachos JC, Dickens GR, Zeebe RE (2008) An early Cenozoic perspective on greenhouse
warming and carbon cycle dynamics. Nature 451:279–283
99. Kennett JP, Stott LD (1991) Abrupt deep-sea warming, palaeoceanographic changes and
benthic extinctions at the end of the Palaeocene. Nature 353:225–229
100. Alegret L, Ortiz S, Molina E (2009) Extinction and recovery of benthic foraminifera across the
Paleocene-Eocene thermal maximum at the Alamedilla section (Southern Spain). Palaeogeogr
Palaeoclimatol Palaeoecol 279:186–200
101. Speijer R, Wagner T (2002) Sea-level changes and black shales associated with the late
Paleocene thermal maximum: organic-geochemical and micropaleontologic evidence from
the southern Tethyan margin (Egypt-Israel). Geol Soc Am Spec Paper 356:533–549
102. Thomas E (1989) Development of Cenozoic deep-sea benthic foraminiferal faunas in Antarctic
waters. J Geol Soc Lond Spec Publ 47:283–296
103. Kelly DC, Bralower TJ, Zachos JC, Premoli-Silva I, Thomas E (1996) Rapid diversification
of planktonic foraminifera in the tropical Pacific (ODP Site 865) during the late Paleocene
thermal maximum. Geology 24:423–426
104. Lu G, Adatte T, Keller G, Ortiz N (1998) Abrupt climatic, oceanographic and ecologic
changes near the Paleocene-Eocene transition in the deep Tethys basin: the Alamedilla section,
southern Spain. Ecol Geol Helvatica 91:293–306
105. Luciani V, Giusberti L, Agnini C, Backman J, Fornaciari E, Rio D (2007) Paleocene-Eocene
thermal maximum as recorded by Tethyan planktonic foraminifera in the Forada section
(northern Italy). Mar Micropaleontol 64:189–214
106. Bolle MP, Adatte T (2001) Paleocene-early eocene climatic evolution in the Tethyan realm:
clay mineral evidence. Clay Mineral 36:249–261
107. Bolle M-P, Tantawy AA, Pardo A, Adatte T, Burns SJ, Kassab A (2000) Climatic and environmental changes documented in the upper Paleocene to lower Eocene of Egypt. Eclogae
Geol Helv 93:33–51
108. Bowen GJ, Beerling DJ, Koch PL, Zachos JC, Quattlebaum T (2004) A humid climate state
during the Paleocene-Eocene thermal maximum. Nature 432:495–499
109. Bowen GJ, Clyde WC, Koch PL, Ting S, Alroy J, Tsubamoto T, Wang Y, Wang Y (2002)
Mammalian dispersal at the Paleocene/Eocene boundary. Science 295:2062–2065
110. Wing SL, Alroy J, Hickey LJ (1995) Plant and mammal diversity in the Paleocene to early
Eocene of the Bighorn Basin. Palaeogeogr Palaeoclimatol Palaeoecol 115:117–155
H. Khozyem
90. Keller G, Adatte T, Bhowmick PK, Upadhyay H, Dave A, Reddy AN, Jaiprakash BC (2012)
Nature and timing of extinctions in Cretaceous-Tertiary planktic foraminifera preserved in
Deccan intertrappean sediments of the Krishna-Godavari Basin, India. Earth Planet Sci Lett
341:211–221
91. Petersen SV, Dutton A, Lohmann KC (2016) End-Cretaceous extinction in Antarctica linked
to both Deccan volcanism and meteorite impact via climate change. Nat Commun 7
92. Ponte JMN (2013) Magnetic mineralogy of Cretaceous-Tertiary sections (Tethys, Iran and
India): links with the Deccan Phase-2 (Doctoral dissertation)
93. Renne P, Sprain C, Pande K, Richards M, Vanderkluysen L, Self S (2016) Tempo of the
Deccan Traps eruptions in relation to events at the Cretaceous-Paleogene boundary. In EGU
general assembly conference abstracts (18, 9496)
94. Renne P, Sprain CJ, Richards MA, Self S, Vanderkluysen L, Pande K (2015) State shift
in Deccan volcanism at the Cretaceous-Paleogene boundary, possibly induced by impact.
Science 350(6256):76–78
95. Robinson N, Ravizza G, Coccioni R, Peucker-Ehrenbrink B, Norris R (2009) A highresolution marine 187 Os/188 Os record for the late Maastrichtian: Distinguishing the
chemical fingerprints of Deccan volcanism and the KP impact event. Earth Planet Sci Lett
281(3):159–168
96. Zachos J, Pagani M, Sloan L, Thomas E, Billups K (2001) Trends, rhythms, and aberrations
in global climate 65 Ma to present. Science 292:686–693
97. Katz ME, Pak DK, Dickens GR, Miller KG (1999) The source and fate of massive carbon
input during the Latest Paleocene thermal maximum. Science 286:1531–1533
98. Zachos JC, Dickens GR, Zeebe RE (2008) An early Cenozoic perspective on greenhouse
warming and carbon cycle dynamics. Nature 451:279–283
99. Kennett JP, Stott LD (1991) Abrupt deep-sea warming, palaeoceanographic changes and
benthic extinctions at the end of the Palaeocene. Nature 353:225–229
100. Alegret L, Ortiz S, Molina E (2009) Extinction and recovery of benthic foraminifera across the
Paleocene-Eocene thermal maximum at the Alamedilla section (Southern Spain). Palaeogeogr
Palaeoclimatol Palaeoecol 279:186–200
101. Speijer R, Wagner T (2002) Sea-level changes and black shales associated with the late
Paleocene thermal maximum: organic-geochemical and micropaleontologic evidence from
the southern Tethyan margin (Egypt-Israel). Geol Soc Am Spec Paper 356:533–549
102. Thomas E (1989) Development of Cenozoic deep-sea benthic foraminiferal faunas in Antarctic
waters. J Geol Soc Lond Spec Publ 47:283–296
103. Kelly DC, Bralower TJ, Zachos JC, Premoli-Silva I, Thomas E (1996) Rapid diversification
of planktonic foraminifera in the tropical Pacific (ODP Site 865) during the late Paleocene
thermal maximum. Geology 24:423–426
104. Lu G, Adatte T, Keller G, Ortiz N (1998) Abrupt climatic, oceanographic and ecologic
changes near the Paleocene-Eocene transition in the deep Tethys basin: the Alamedilla section,
southern Spain. Ecol Geol Helvatica 91:293–306
105. Luciani V, Giusberti L, Agnini C, Backman J, Fornaciari E, Rio D (2007) Paleocene-Eocene
thermal maximum as recorded by Tethyan planktonic foraminifera in the Forada section
(northern Italy). Mar Micropaleontol 64:189–214
106. Bolle MP, Adatte T (2001) Paleocene-early eocene climatic evolution in the Tethyan realm:
clay mineral evidence. Clay Mineral 36:249–261
107. Bolle M-P, Tantawy AA, Pardo A, Adatte T, Burns SJ, Kassab A (2000) Climatic and environmental changes documented in the upper Paleocene to lower Eocene of Egypt. Eclogae
Geol Helv 93:33–51
108. Bowen GJ, Beerling DJ, Koch PL, Zachos JC, Quattlebaum T (2004) A humid climate state
during the Paleocene-Eocene thermal maximum. Nature 432:495–499
109. Bowen GJ, Clyde WC, Koch PL, Ting S, Alroy J, Tsubamoto T, Wang Y, Wang Y (2002)
Mammalian dispersal at the Paleocene/Eocene boundary. Science 295:2062–2065
110. Wing SL, Alroy J, Hickey LJ (1995) Plant and mammal diversity in the Paleocene to early
Eocene of the Bighorn Basin. Palaeogeogr Palaeoclimatol Palaeoecol 115:117–155
