NAST, Condé. The Making of the Siberian Traps Nearly Ended All of Life on Earth. cntraveler.com [online]. 2017-11-27 [cit. 2023-01-13]. Dostupné online. (anglicky)
doi.org
JOACHIMSKI, Michael M.; MÜLLER, Johann; GALLAGHER, Timothy M.; MATHES, Gregor; CHU, Daoliang L.; MOURAVIEV, Fedor; SILANTIEV, Vladimir. Five million years of high atmospheric CO2 in the aftermath of the Permian-Triassic mass extinction. S. 650–654. Geology [online]. 2022-06-01. Roč. 50, čís. 6, s. 650–654. Dostupné online. doi:10.1130/G49714.1. (anglicky)
SONG, Haijun; HUANG, Shan; JIA, Enhao; DAI, Xu; WIGNALL, Paul B.; DUNHILL, Alexander M. Flat latitudinal diversity gradient caused by the Permian–Triassic mass extinction. S. 17578–17583. Proceedings of the National Academy of Sciences [online]. 2020-07-28. Roč. 117, čís. 30, s. 17578–17583. Dostupné online. doi:10.1073/pnas.1918953117. (anglicky)
RETALLACK, Gregory J. Multiple Permian-Triassic life crises on land and at sea. S. 103415. Global and Planetary Change [online]. 2021-03. Roč. 198, s. 103415. Dostupné online. doi:10.1016/j.gloplacha.2020.103415. (anglicky)
DAL CORSO, Jacopo; SONG, Haijun; CALLEGARO, Sara; CHU, Daoliang; SUN, Yadong; HILTON, Jason; GRASBY, Stephen E. Environmental crises at the Permian–Triassic mass extinction. S. 197–214. Nature Reviews Earth & Environment [online]. 2022-02-22. Roč. 3, čís. 3, s. 197–214. Dostupné online. doi:10.1038/s43017-021-00259-4. (anglicky)
VIGLIETTI, Pia A.; BENSON, Roger B. J.; SMITH, Roger M. H.; BOTHA, Jennifer; KAMMERER, Christian F.; SKOSAN, Zaituna; BUTLER, Elize. Evidence from South Africa for a protracted end-Permian extinction on land. S. e2017045118. Proceedings of the National Academy of Sciences [online]. 2021-04-27. Roč. 118, čís. 17, s. e2017045118. Dostupné online. doi:10.1073/pnas.2017045118. (anglicky)
LI, Guoshan; WANG, Yongbiao; LI, Sheng; WANG, Tan; LIAO, Wei; DENG, Baozhu; LAI, Zhongping. Biotic Response to Rapid Environmental Changes During the Permian–Triassic Mass Extinction. S. 911492. Frontiers in Marine Science [online]. 2022-06-10. Roč. 9, s. 911492. Dostupné online. doi:10.3389/fmars.2022.911492. (anglicky)
Shu-Zhong Shen; et al. (2018). A sudden end-Permian mass extinction in South China. Geological Society of America Bulletin. doi: https://doi.org/10.1130/B31909.1
SCHNEEBELI-HERMANN, Elke. Regime Shifts in an Early Triassic Subtropical Ecosystem. S. 588696. Frontiers in Earth Science [online]. 2020-12-03. Roč. 8, s. 588696. Dostupné online. doi:10.3389/feart.2020.588696. (anglicky)
CAI, Yao-feng; ZHANG, Hua; CAO, Chang-qun; ZHENG, Quan-feng; JIN, Chuan-fang; SHEN, Shu-zhong. Wildfires and deforestation during the Permian–Triassic transition in the southern Junggar Basin, Northwest China. S. 103670. Earth-Science Reviews [online]. 2021-07. Roč. 218, s. 103670. Dostupné online. doi:10.1016/j.earscirev.2021.103670. (anglicky)
FOSTER, William J.; HIRTZ, J. A.; FARRELL, C.; REISTROFFER, M.; TWITCHETT, R. J.; MARTINDALE, R. C. Bioindicators of severe ocean acidification are absent from the end-Permian mass extinction. S. 1202. Scientific Reports [online]. 2022-01-24. Roč. 12, čís. 1, s. 1202. Dostupné online. doi:10.1038/s41598-022-04991-9. (anglicky)
LU, Jing; WANG, Ye; YANG, Minfang; ZHANG, Peixin; BOND, David P.G.; SHAO, Longyi; HILTON, Jason. Diachronous end-Permian terrestrial ecosystem collapse with its origin in wildfires. S. 110960. Palaeogeography, Palaeoclimatology, Palaeoecology [online]. 2022-05. Roč. 594, s. 110960. Dostupné online. doi:10.1016/j.palaeo.2022.110960. (anglicky)
ZHU, Zhicai; LIU, Yongqing; KUANG, Hongwei; NEWELL, Andrew J.; PENG, Nan; CUI, Mingming; BENTON, Michael J. Improving paleoenvironment in North China aided Triassic biotic recovery on land following the end-Permian mass extinction. S. 103914. Global and Planetary Change [online]. 2022-09. Roč. 216, s. 103914. Dostupné online. doi:10.1016/j.gloplacha.2022.103914. (anglicky)
CUI, Ying; LI, Mingsong; VAN SOELEN, Elsbeth E.; PETERSE, Francien; KÜRSCHNER, Wolfram M. Massive and rapid predominantly volcanic CO 2 emission during the end-Permian mass extinction. S. e2014701118. Proceedings of the National Academy of Sciences [online]. 2021-09-14. Roč. 118, čís. 37, s. e2014701118. Dostupné online. doi:10.1073/pnas.2014701118. (anglicky)
LI, Menghan; FRANK, Tracy D.; XU, Yilun; FIELDING, Christopher R.; GONG, Yizhe; SHEN, Yanan. Sulfur isotopes link atmospheric sulfate aerosols from the Siberian Traps outgassing to the end-Permian extinction on land. S. 117634. Earth and Planetary Science Letters [online]. 2022-08. Roč. 592, s. 117634. Dostupné online. doi:10.1016/j.epsl.2022.117634. (anglicky)
CHAPMAN, Timothy; MILAN, Luke A.; METCALFE, Ian; BLEVIN, Phil L.; CROWLEY, Jim. Pulses in silicic arc magmatism initiate end-Permian climate instability and extinction. S. 411–416. Nature Geoscience [online]. 2022-05. Roč. 15, čís. 5, s. 411–416. Dostupné online. doi:10.1038/s41561-022-00934-1. (anglicky)
ZHANG, Hua; ZHANG, Feifei; CHEN, Jiu-bin; ERWIN, Douglas H.; SYVERSON, Drew D.; NI, Pei; RAMPINO, Michael. Felsic volcanism as a factor driving the end-Permian mass extinction. S. eabh1390. Science Advances [online]. 2021-11-19. Roč. 7, čís. 47, s. eabh1390. Dostupné online. doi:10.1126/sciadv.abh1390. (anglicky)
LIU, Feng; PENG, Huiping; MARSHALL, John E. A.; LOMAX, Barry H.; BOMFLEUR, Benjamin; KENT, Matthew S.; FRASER, Wesley T. Dying in the Sun: Direct evidence for elevated UV-B radiation at the end-Permian mass extinction. Science Advances [online]. 2023-01-06. Roč. 9, čís. 1. Dostupné online. doi:10.1126/sciadv.abo6102. (anglicky)
ONOUE, Tetsuji; TAKAHATA, Naoto; MIURA, Mitsutaka; SATO, Honami; ISHIKAWA, Akira; SODA, Katsuhito; SANO, Yuji. Enhanced flux of extraterrestrial 3He across the Permian–Triassic boundary. S. 18. Progress in Earth and Planetary Science [online]. 2019-12. Roč. 6, čís. 1, s. 18. Dostupné online. doi:10.1186/s40645-019-0267-0. (anglicky)
WU, Yuyang; CHU, Daoliang; TONG, Jinnan; SONG, Haijun; DAL CORSO, Jacopo; WIGNALL, Paul B.; SONG, Huyue. Six-fold increase of atmospheric pCO2 during the Permian–Triassic mass extinction. S. 2137. Nature Communications [online]. 2021-04-09. Roč. 12, čís. 1, s. 2137. Dostupné online. doi:10.1038/s41467-021-22298-7. (anglicky)
DAL CORSO, Jacopo; MILLS, Benjamin J. W.; CHU, Daoliang; NEWTON, Robert J.; MATHER, Tamsin A.; SHU, Wenchao; WU, Yuyang. Permo–Triassic boundary carbon and mercury cycling linked to terrestrial ecosystem collapse. S. 2962. Nature Communications [online]. 2020-06-11. Roč. 11, čís. 1, s. 2962. Dostupné online. doi:10.1038/s41467-020-16725-4. (anglicky)
VIGLIETTI, Pia A.; SMITH, Roger M.H.; RUBIDGE, Bruce S. Changing palaeoenvironments and tetrapod populations in the Daptocephalus Assemblage Zone (Karoo Basin, South Africa) indicate early onset of the Permo-Triassic mass extinction. S. 102–111. Journal of African Earth Sciences [online]. 2018-02. Roč. 138, s. 102–111. Dostupné online. doi:10.1016/j.jafrearsci.2017.11.010. (anglicky)
PENN, Justin L.; DEUTSCH, Curtis; PAYNE, Jonathan L.; SPERLING, Erik A. Temperature-dependent hypoxia explains biogeography and severity of end-Permian marine mass extinction. S. eaat1327. Science [online]. 2018-12-07. Roč. 362, čís. 6419, s. eaat1327. Dostupné online. doi:10.1126/science.aat1327. (anglicky)
JURIKOVA, Hana; GUTJAHR, Marcus; WALLMANN, Klaus; FLÖGEL, Sascha; LIEBETRAU, Volker; POSENATO, Renato; ANGIOLINI, Lucia. Permian–Triassic mass extinction pulses driven by major marine carbon cycle perturbations. S. 745–750. Nature Geoscience [online]. 2020-11. Roč. 13, čís. 11, s. 745–750. Dostupné online. doi:10.1038/s41561-020-00646-4. (anglicky)
BERNARDI, Massimo; PETTI, Fabio Massimo; BENTON, Michael J. Tetrapod distribution and temperature rise during the Permian–Triassic mass extinction. S. 20172331. Proceedings of the Royal Society B: Biological Sciences [online]. 2018-01-10. Roč. 285, čís. 1870, s. 20172331. Dostupné online. doi:10.1098/rspb.2017.2331. (anglicky)
TARAILO, David A. Taxonomic and ecomorphological diversity of temnospondyl amphibians across the Permian-Triassic boundary in the Karoo Basin (South Africa). S. 1840–1848. Journal of Morphology [online]. 2018-12. Roč. 279, čís. 12, s. 1840–1848. Dostupné online. doi:10.1002/jmor.20906. (anglicky)
ZHAO, Xiangdong; ZHENG, Daran; XIE, Guwei; JENKYNS, Hugh C.; GUAN, Chengguo; FANG, Yanan; HE, Jing. Recovery of lacustrine ecosystems after the end-Permian mass extinction. S. 609–613. Geology [online]. 2020-06-01. Roč. 48, čís. 6, s. 609–613. Dostupné online. doi:10.1130/G47502.1. (anglicky)
MCLOUGHLIN, Stephen; MAYS, Chris; VAJDA, Vivi; BOCKING, Malcolm; FRANK, Tracy D.; FIELDING, Christopher R. Dwelling in the dead zone – vertebrate burrows immediately succeeding the end-Permian extinction event in Australia. S. 342–357. PALAIOS [online]. 2020-08-27. Roč. 35, čís. 8, s. 342–357. Dostupné online. doi:10.2110/palo.2020.007. (anglicky)
HUANG, Yuangeng; CHEN, Zhong-Qiang; ROOPNARINE, Peter D.; BENTON, Michael J.; YANG, Wan; LIU, Jun; ZHAO, Laishi. Ecological dynamics of terrestrial and freshwater ecosystems across three mid-Phanerozoic mass extinctions from northwest China. S. rspb.2021.0148, 20210148. Proceedings of the Royal Society B: Biological Sciences [online]. 2021-03-31. Roč. 288, čís. 1947, s. rspb.2021.0148, 20210148. Dostupné online. doi:10.1098/rspb.2021.0148. (anglicky)
LI, Guoshan; WANG, Yongbiao; LI, Sheng; WANG, Tan; LIAO, Wei; DENG, Baozhu; LAI, Zhongping. Biotic Response to Rapid Environmental Changes During the Permian–Triassic Mass Extinction. S. 911492. Frontiers in Marine Science [online]. 2022-06-10. Roč. 9, s. 911492. Dostupné online. doi:10.3389/fmars.2022.911492. (anglicky)
SCHNEEBELI-HERMANN, Elke. Regime Shifts in an Early Triassic Subtropical Ecosystem. S. 588696. Frontiers in Earth Science [online]. 2020-12-03. Roč. 8, s. 588696. Dostupné online. doi:10.3389/feart.2020.588696. (anglicky)
geoscienceworld.org
pubs.geoscienceworld.org
JOACHIMSKI, Michael M.; MÜLLER, Johann; GALLAGHER, Timothy M.; MATHES, Gregor; CHU, Daoliang L.; MOURAVIEV, Fedor; SILANTIEV, Vladimir. Five million years of high atmospheric CO2 in the aftermath of the Permian-Triassic mass extinction. S. 650–654. Geology [online]. 2022-06-01. Roč. 50, čís. 6, s. 650–654. Dostupné online. doi:10.1130/G49714.1. (anglicky)
ZHAO, Xiangdong; ZHENG, Daran; XIE, Guwei; JENKYNS, Hugh C.; GUAN, Chengguo; FANG, Yanan; HE, Jing. Recovery of lacustrine ecosystems after the end-Permian mass extinction. S. 609–613. Geology [online]. 2020-06-01. Roč. 48, čís. 6, s. 609–613. Dostupné online. doi:10.1130/G47502.1. (anglicky)
MCLOUGHLIN, Stephen; MAYS, Chris; VAJDA, Vivi; BOCKING, Malcolm; FRANK, Tracy D.; FIELDING, Christopher R. Dwelling in the dead zone – vertebrate burrows immediately succeeding the end-Permian extinction event in Australia. S. 342–357. PALAIOS [online]. 2020-08-27. Roč. 35, čís. 8, s. 342–357. Dostupné online. doi:10.2110/palo.2020.007. (anglicky)
nature.com
DAL CORSO, Jacopo; SONG, Haijun; CALLEGARO, Sara; CHU, Daoliang; SUN, Yadong; HILTON, Jason; GRASBY, Stephen E. Environmental crises at the Permian–Triassic mass extinction. S. 197–214. Nature Reviews Earth & Environment [online]. 2022-02-22. Roč. 3, čís. 3, s. 197–214. Dostupné online. doi:10.1038/s43017-021-00259-4. (anglicky)
FOSTER, William J.; HIRTZ, J. A.; FARRELL, C.; REISTROFFER, M.; TWITCHETT, R. J.; MARTINDALE, R. C. Bioindicators of severe ocean acidification are absent from the end-Permian mass extinction. S. 1202. Scientific Reports [online]. 2022-01-24. Roč. 12, čís. 1, s. 1202. Dostupné online. doi:10.1038/s41598-022-04991-9. (anglicky)
CHAPMAN, Timothy; MILAN, Luke A.; METCALFE, Ian; BLEVIN, Phil L.; CROWLEY, Jim. Pulses in silicic arc magmatism initiate end-Permian climate instability and extinction. S. 411–416. Nature Geoscience [online]. 2022-05. Roč. 15, čís. 5, s. 411–416. Dostupné online. doi:10.1038/s41561-022-00934-1. (anglicky)
WU, Yuyang; CHU, Daoliang; TONG, Jinnan; SONG, Haijun; DAL CORSO, Jacopo; WIGNALL, Paul B.; SONG, Huyue. Six-fold increase of atmospheric pCO2 during the Permian–Triassic mass extinction. S. 2137. Nature Communications [online]. 2021-04-09. Roč. 12, čís. 1, s. 2137. Dostupné online. doi:10.1038/s41467-021-22298-7. (anglicky)
DAL CORSO, Jacopo; MILLS, Benjamin J. W.; CHU, Daoliang; NEWTON, Robert J.; MATHER, Tamsin A.; SHU, Wenchao; WU, Yuyang. Permo–Triassic boundary carbon and mercury cycling linked to terrestrial ecosystem collapse. S. 2962. Nature Communications [online]. 2020-06-11. Roč. 11, čís. 1, s. 2962. Dostupné online. doi:10.1038/s41467-020-16725-4. (anglicky)
JURIKOVA, Hana; GUTJAHR, Marcus; WALLMANN, Klaus; FLÖGEL, Sascha; LIEBETRAU, Volker; POSENATO, Renato; ANGIOLINI, Lucia. Permian–Triassic mass extinction pulses driven by major marine carbon cycle perturbations. S. 745–750. Nature Geoscience [online]. 2020-11. Roč. 13, čís. 11, s. 745–750. Dostupné online. doi:10.1038/s41561-020-00646-4. (anglicky)
University of Texas at Dallas. New findings rock long-held assumptions about ancient mass extinction. phys.org [online]. 2015-11-02 [cit. 2023-01-13]. Dostupné online. (anglicky)
Wits University. Mass extinction event from South Africa's Karoo. phys.org [online]. 2015-07-07 [cit. 2023-01-13]. Dostupné online. (anglicky)
New York University. Researchers unearth 'new' extinction. phys.org [online]. 2019-09-09 [cit. 2023-01-13]. Dostupné online. (anglicky)
Permian marine mass extinction linked to volcanism-induced anoxia. phys.org [online]. [cit. 2023-12-29]. Dostupné online.
University of Zurich. Previously unknown global ecological disaster discovered. phys.org [online]. 2016-06-28 [cit. 2023-01-13]. Dostupné online. (anglicky)
University of Cincinnati. New evidence suggests volcanoes caused biggest mass extinction ever. phys.org [online]. 2019-04-15 [cit. 2023-01-13]. Dostupné online. (anglicky)
New York University. 'Volcanic winter' likely contributed to ecological catastrophe 250 million years ago: study. phys.org [online]. 2021-11-17 [cit. 2023-01-13]. Dostupné online. (anglicky)
University of Nottingham. Sunscreen-like chemicals found in fossil plants reveal UV radiation was involved in mass extinction events. phys.org [online]. 2023-01-06 [cit. 2023-01-13]. Dostupné online. (anglicky)
YIRKA, Bob. Study ties most severe extinction to ancient volcanic activity. phys.org [online]. 2015-08-31 [cit. 2023-01-13]. Dostupné online. (anglicky)
Tohoku University. Large volcanic eruption caused the largest mass extinction. phys.org [online]. 2020-11-10 [cit. 2023-01-13]. Dostupné online. (anglicky)
ENSLIN, Rob. Geologists offer new clues to cause of world's greatest extinction. phys.org [online]. 2017-07-31 [cit. 2023-01-13]. Dostupné online. (anglicky)
TATE, Heather. Geochemical study confirms cause of end-Permian mass extinction event. phys.org [online]. 2021-06-21 [cit. 2023-01-13]. Dostupné online. (anglicky)
Florida State University. Researchers find oxygen spike coincided with ancient global extinction. phys.org [online]. 2021-08-02 [cit. 2023-01-13]. Dostupné online. (anglicky)
SCHRAGE, Scott. Earth's largest extinction event likely took plants first. phys.org [online]. 2019-01-31 [cit. 2023-01-13]. Dostupné online. (anglicky)
SANDERS, Robert. In Earth's largest extinction, land die-offs began long before ocean turnover. phys.org [online]. 2020-03-26 [cit. 2023-01-13]. Dostupné online. (anglicky)
YIRKA, Bob. Paleontologist suggests 'great dying' 252 million years ago wasn't as bad as thought. phys.org [online]. 2016-10-04 [cit. 2023-01-13]. Dostupné online. (anglicky)
University of Bristol. World's greatest mass extinction triggered switch to warm-bloodedness. phys.org [online]. 2020-10-16 [cit. 2023-01-13]. Dostupné online. (anglicky)
pnas.org
SONG, Haijun; HUANG, Shan; JIA, Enhao; DAI, Xu; WIGNALL, Paul B.; DUNHILL, Alexander M. Flat latitudinal diversity gradient caused by the Permian–Triassic mass extinction. S. 17578–17583. Proceedings of the National Academy of Sciences [online]. 2020-07-28. Roč. 117, čís. 30, s. 17578–17583. Dostupné online. doi:10.1073/pnas.1918953117. (anglicky)
VIGLIETTI, Pia A.; BENSON, Roger B. J.; SMITH, Roger M. H.; BOTHA, Jennifer; KAMMERER, Christian F.; SKOSAN, Zaituna; BUTLER, Elize. Evidence from South Africa for a protracted end-Permian extinction on land. S. e2017045118. Proceedings of the National Academy of Sciences [online]. 2021-04-27. Roč. 118, čís. 17, s. e2017045118. Dostupné online. doi:10.1073/pnas.2017045118. (anglicky)
CUI, Ying; LI, Mingsong; VAN SOELEN, Elsbeth E.; PETERSE, Francien; KÜRSCHNER, Wolfram M. Massive and rapid predominantly volcanic CO 2 emission during the end-Permian mass extinction. S. e2014701118. Proceedings of the National Academy of Sciences [online]. 2021-09-14. Roč. 118, čís. 37, s. e2014701118. Dostupné online. doi:10.1073/pnas.2014701118. (anglicky)
royalsocietypublishing.org
BERNARDI, Massimo; PETTI, Fabio Massimo; BENTON, Michael J. Tetrapod distribution and temperature rise during the Permian–Triassic mass extinction. S. 20172331. Proceedings of the Royal Society B: Biological Sciences [online]. 2018-01-10. Roč. 285, čís. 1870, s. 20172331. Dostupné online. doi:10.1098/rspb.2017.2331. (anglicky)
HUANG, Yuangeng; CHEN, Zhong-Qiang; ROOPNARINE, Peter D.; BENTON, Michael J.; YANG, Wan; LIU, Jun; ZHAO, Laishi. Ecological dynamics of terrestrial and freshwater ecosystems across three mid-Phanerozoic mass extinctions from northwest China. S. rspb.2021.0148, 20210148. Proceedings of the Royal Society B: Biological Sciences [online]. 2021-03-31. Roč. 288, čís. 1947, s. rspb.2021.0148, 20210148. Dostupné online. doi:10.1098/rspb.2021.0148. (anglicky)
science.org
ZHANG, Hua; ZHANG, Feifei; CHEN, Jiu-bin; ERWIN, Douglas H.; SYVERSON, Drew D.; NI, Pei; RAMPINO, Michael. Felsic volcanism as a factor driving the end-Permian mass extinction. S. eabh1390. Science Advances [online]. 2021-11-19. Roč. 7, čís. 47, s. eabh1390. Dostupné online. doi:10.1126/sciadv.abh1390. (anglicky)
LIU, Feng; PENG, Huiping; MARSHALL, John E. A.; LOMAX, Barry H.; BOMFLEUR, Benjamin; KENT, Matthew S.; FRASER, Wesley T. Dying in the Sun: Direct evidence for elevated UV-B radiation at the end-Permian mass extinction. Science Advances [online]. 2023-01-06. Roč. 9, čís. 1. Dostupné online. doi:10.1126/sciadv.abo6102. (anglicky)
PENN, Justin L.; DEUTSCH, Curtis; PAYNE, Jonathan L.; SPERLING, Erik A. Temperature-dependent hypoxia explains biogeography and severity of end-Permian marine mass extinction. S. eaat1327. Science [online]. 2018-12-07. Roč. 362, čís. 6419, s. eaat1327. Dostupné online. doi:10.1126/science.aat1327. (anglicky)
sciencedirect.com
RETALLACK, Gregory J. Multiple Permian-Triassic life crises on land and at sea. S. 103415. Global and Planetary Change [online]. 2021-03. Roč. 198, s. 103415. Dostupné online. doi:10.1016/j.gloplacha.2020.103415. (anglicky)
CAI, Yao-feng; ZHANG, Hua; CAO, Chang-qun; ZHENG, Quan-feng; JIN, Chuan-fang; SHEN, Shu-zhong. Wildfires and deforestation during the Permian–Triassic transition in the southern Junggar Basin, Northwest China. S. 103670. Earth-Science Reviews [online]. 2021-07. Roč. 218, s. 103670. Dostupné online. doi:10.1016/j.earscirev.2021.103670. (anglicky)
LU, Jing; WANG, Ye; YANG, Minfang; ZHANG, Peixin; BOND, David P.G.; SHAO, Longyi; HILTON, Jason. Diachronous end-Permian terrestrial ecosystem collapse with its origin in wildfires. S. 110960. Palaeogeography, Palaeoclimatology, Palaeoecology [online]. 2022-05. Roč. 594, s. 110960. Dostupné online. doi:10.1016/j.palaeo.2022.110960. (anglicky)
ZHU, Zhicai; LIU, Yongqing; KUANG, Hongwei; NEWELL, Andrew J.; PENG, Nan; CUI, Mingming; BENTON, Michael J. Improving paleoenvironment in North China aided Triassic biotic recovery on land following the end-Permian mass extinction. S. 103914. Global and Planetary Change [online]. 2022-09. Roč. 216, s. 103914. Dostupné online. doi:10.1016/j.gloplacha.2022.103914. (anglicky)
LI, Menghan; FRANK, Tracy D.; XU, Yilun; FIELDING, Christopher R.; GONG, Yizhe; SHEN, Yanan. Sulfur isotopes link atmospheric sulfate aerosols from the Siberian Traps outgassing to the end-Permian extinction on land. S. 117634. Earth and Planetary Science Letters [online]. 2022-08. Roč. 592, s. 117634. Dostupné online. doi:10.1016/j.epsl.2022.117634. (anglicky)
VIGLIETTI, Pia A.; SMITH, Roger M.H.; RUBIDGE, Bruce S. Changing palaeoenvironments and tetrapod populations in the Daptocephalus Assemblage Zone (Karoo Basin, South Africa) indicate early onset of the Permo-Triassic mass extinction. S. 102–111. Journal of African Earth Sciences [online]. 2018-02. Roč. 138, s. 102–111. Dostupné online. doi:10.1016/j.jafrearsci.2017.11.010. (anglicky)
TARAILO, David A. Taxonomic and ecomorphological diversity of temnospondyl amphibians across the Permian-Triassic boundary in the Karoo Basin (South Africa). S. 1840–1848. Journal of Morphology [online]. 2018-12. Roč. 279, čís. 12, s. 1840–1848. Dostupné online. doi:10.1002/jmor.20906. (anglicky)