[1] Akikuni K, Hori R, Vajda V, et al. Stratigraphy of Triassic-Jurassic boundary sequences from the Kawhia coast and Awakino gorge, Murihiku Terrane, New Zealand[J]. Stratigraphy, 2010, 7(1): 7-24.
[2] Mcghee G R, Jr, Clapham M E, Sheehan P M, et al. A new ecological-severity ranking of major Phanerozoic biodiversity crises[J]. Palaeogeography, Palaeoclimatology, Palaeoecology, 2013, 370: 260-270.
[3] de Lamotte D F, Fourdan B, Leleu S, et al. Style of rifting and the stages of Pangea breakup[J]. Tectonics, 2015, 34(5): 1009-1029.
[4] Beerling D J, Berner R A. Biogeochemical constraints on the Triassic-Jurassic boundary carbon cycle event[J]. Global Biogeochemical Cycles, 2002, 16(3): 10-1-10-13.
[5] McElwain J C, Beerling D J, Woodward F I. Fossil plants and global warming at the Triassic-Jurassic boundary[J]. Science, 1999, 285(5432): 1386-1390.
[6] Lindström S, Erlström M. The Late Rhaetian transgression in southern Sweden: Regional (and global) recognition and relation to the Triassic-Jurassic boundary[J]. Palaeogeography, Palaeoclimatology, Palaeoecology, 2006, 241(3/4): 339-372.
[7] Jaraula C M B, Grice K, Twitchett R J, et al. Elevated pCO2 leading to Late Triassic extinction, persistent photic zone euxinia, and rising sea levels[J]. Geology, 2013, 41(9): 955-958.
[8] Zaffani M, Jadoul F, Rigo M. A new Rhaetian δ13Corg record: Carbon cycle disturbances, volcanism, End-Triassic Mass Extinction (ETE)[J]. Earth-Science Reviews, 2018, 178: 92-104.
[9] Ruhl M, Deenen M H L, Abels H A, et al. Astronomical Constraints on the duration of the early Jurassic hettangian stage and recovery rates following the end-Triassic mass extinction (St Audrie’s Bay/East Quantoxhead, UK)[J]. Earth and Planetary Science Letters, 2010, 295(1/2): 262-276.
[10] Belcher C M, Mander L, Rein G, et al. Increased fire activity at the Triassic/Jurassic boundary in Greenland due to climate-driven floral change[J]. Nature Geoscience, 2010, 3(6): 426-429.
[11] Song Y, Algeo T J, Wu W J, et al. Distribution of pyrolytic PAHs across the Triassic-Jurassic boundary in the Sichuan Basin, southwestern China: Evidence of wildfire outside the Central Atlantic Magmatic province[J]. Earth-Science Reviews, 2020, 201: 102970.
[12] Belcher C M, Finch P, Collinson M E, et al. Geochemical evidence for combustion of hydrocarbons during the K-T impact event[J]. Proceedings of the National Academy of Sciences of the United States of America, 2009, 106(11): 4112-4117.
[13] Preto N, Kustatscher E, Wignall P B. Triassic climates-state of the art and perspectives[J]. Palaeogeography, Palaeoclimatology, Palaeoecology, 2010, 290(1/2/3/4): 1-10.
[14] Sha J G, Olsen P E, Pan Y H, et al. Triassic-Jurassic climate in continental high-latitude Asia was dominated by obliquity-paced variations (Junggar Basin, Ürümqi, China)[J]. Proceedings of the National Academy of Sciences of the United States of America, 2015, 112(12): 3624-3629.
[15] 辜延容. 准噶尔盆地南缘构造特征与油气分布[D]. 成都:成都理工大学,2015.

Gu Yanrong. The structure feature and oil-gas distribution in southern margin of the Junggar Basin[D]. Chengdu: Chengdu University of Technology, 2015.
[16] 方世虎. 准噶尔盆地南缘中新生代构造演化及盆山关系研究[D]. 北京:北京大学,2004.

Fang Shihu. Mesozoic Cenozoic tectonic evolution and basin mountain relationship in the southern margin of Junggar Basin[D]. Beijing: Peking University, 2004.
[17] 张芮. 准噶尔盆地西北缘下侏罗统八道湾组层序地层及沉积相研究[D]. 成都:成都理工大学,2016.

Zhang Rui. Study on sequence straigraphy and sedimentary facies of the Lower Jurassic Badaowan Formation in the northwest of the Junggar Basin[D]. Chengdu: Chengdu University of Technology, 2016.
[18] 邓胜徽,卢远征,樊茹,等. 新疆北部的侏罗系[M]. 合肥:中国科学技术大学出版社,2010:17-44,187-192,197-200.

Deng Shenghui, Lu Yuanzheng, Fan Ru, et al. The Jurassic system of northern Xinjiang, China[M]. Hefei: University of Science and Technology of China Press, 2010: 17-44, 187-192, 197-200.
[19] 卢远征,邓胜徽. 新疆准噶尔盆地南缘郝家沟组和八道湾组底部孢粉组合及三叠系—侏罗系界线[J]. 地质学报,2005,79(1):15-27.

Lu Yuanzheng, Deng Shenghui. Triassic-Jurassic sporopollen assemblages on the southern margin of the Junggar Basin, Xinjiang and the T-J boundary[J]. Acta Geologica Sinica, 2005, 79(1): 15-27.
[20] 卢远征,邓胜徽. 准噶尔盆地南缘三叠纪—侏罗纪之交的古气候[J]. 古地理学报,2009,11(6):652-660.

Lu Yuanzheng, Deng Shenghui. Palaeoclimate around the Triassic-Jurassic boundary in southern margin of Junggar Basin[J]. Journal of Palaeogeography, 2009, 11(6): 652-660.
[21] 邓胜徽,卢远征,樊茹,等. 中国陆相三叠系—侏罗系界线[J]. 地层学杂志,2013,37(4):582-584.

Deng Shenghui, Lu Yuanzheng, Fan Ru, et al. Terrestrial Triassic-Jurassic boundary in China[J]. Journal of Stratigraphy, 2013, 37(4): 582-584.
[22] Sha J G, Vajda V, Pan Y H, et al. Stratigraphy of the Triassic-Jurassic Boundary successions of the southern margin of the Junggar Basin, Northwestern China[J]. Acta Geologica Sinica (English Edition), 2011, 85(2): 421-436.
[23] 邓胜徽,姚益民,叶得泉,等. 中国北方侏罗系(I)地层总论[M]. 北京:石油工业出版社,2003.

Deng Shenghui, Yao Yimin, Ye Dequan, et al. Jurassic system in the north of China (I) Introduction to Stratigraphy[M]. Beijing: Petroleum Industry Press, 2003.
[24] Ruhl M, Kürschner W M, Krystyn L. Triassic- Jurassic organic carbon isotope stratigraphy of key sections in the western Tethys Realm (Austria)[J]. Earth and Planetary Science Letters, 2009, 281(3/4): 169-187.
[25] McRoberts C A, Ward P D, Hesselbo S. A proposal for the base Hettangian Stage (= base Jurassic System) GSSP at New York Canyon (Nevada, USA) using carbon isotopes[J]. ISJS Newsletter, 2007, 34(1): 43-49.
[26] Hesselbo S P, Robinson S A, Surlyk F, et al. Terrestrial and marine extinction at the Triassic-Jurassic boundary synchronized with major carbon-cycle perturbation: A link to initiation of massive volcanism[J]. Geology, 2002, 30(3): 251-254.
[27] Thibodeau A M, Ritterbush K, Yager J A, et al. Mercury anomalies and the timing of biotic recovery following the end-Triassic mass extinction[J]. Nature Communications, 2016, 7(1): 11147.
[28] Yunker M B, Macdonald R W, Vingarzan R, et al. PAHs in the Fraser River basin: A critical appraisal of PAH ratios as indicators of PAH source and composition[J]. Organic Geochemistry, 2002, 33(4): 489-515.
[29] Choi S D. Time trends in the levels and patterns of polycyclic aromatic hydrocarbons (PAHs) in pine bark, litter, and soil after a forest fire[J]. Science of the Total Environment, 2014, 470-471: 1441-1449.
[30] Blumer M, Youngblood W W. Polycyclic aromatic hydrocarbons in soils and recent sediments[J]. Science, 1975, 188(4183): 53-55.
[31] Laflamme R E, Hites R A. The global distribution of polycyclic aromatic hydrocarbons in recent sediments[J]. Geochimica et Cosmochimica Acta, 1978, 42(3): 289-303.
[32] 朱扬明. 生油岩五环烃的热演化及成熟度参数[J]. 地质地球化学,1998(1):75-80.

Zhu Yangming. Thermal evolution and maturity parameters of pentacyclic aromatic hydrocarbons in source rocks[J]. Geology-Geochemistry, 1998(1): 75-80.
[33] Ruhl M, Hesselbo S P, Al-Suwaidi A, et al. On the onset of Central Atlantic Magmatic Province (CAMP) volcanism and environmental and carbon-cycle change at the Triassic-Jurassic transition (Neuquén Basin, Argentina)[J]. Earth-Science Reviews, 2020, 208: 103-229.
[34] 张筱青,张国权,席书娜,等. 三叠系-侏罗系界线古火灾事件研究:方法、进展及展望[J]. 古生物学报,2016,55(3):331-345.

Zhang Xiaoqing, Zhang Guoquan, Xi Shuna, et al. Wildfire event at the Triassic/Jurassic boundary: Approaches, progress, and perspective[J]. Acta Palaeontologica Sinica, 2016, 55(3): 331-345.
[35] Reeve N, Toumi R. Lightning activity as an indicator of climate change[J]. Quarterly Journal of the Royal Meteorological Society, 1999, 125(555): 893-903.
[36] Hillebrandt A V, Krystyn L, Kürschner W M, et al. The Global Stratotype Sections and Point (GSSP) for the base of the Jurassic System at Kuhjoch (Karwendel Mountains, northern Calcareous Alps, Tyrol, Austria)[J]. Episodes, 2013, 36(3): 162-198.
[37] Petersen H I, Lindström S. Synchronous wildfire activity rise and mire deforestation at the Triassic-Jurassic boundary[J]. PLoS One, 2012, 7(10): e47236.
[38] Harris T M. A liasso-rhaetic flora in South Wales[J]. Proceedings of the Royal Society B: Biological Sciences, 1957, 147(928): 289-308.
[39] Harris T M. Forest fire in the Mesozoic[J]. Journal of Ecology, 1958, 46(2): 447-453.
[40] Marynowski L, Simoneit B R T. Widespread Upper Triassic to Lower Jurassic wildfire records from Poland: Evidence from charcoal and pyrolytic polycyclic aromatic hydrocarbons[J]. Palaios, 2009, 24(11/12): 785-798.
[41] Belcher C M, McElwain J C. Limits for combustion in low O2 redefine paleoatmospheric predictions for the Mesozoic[J]. Science, 2008, 321(5893): 1197-1200.
[42] Pieńkowski G, Niedźwiedzki G, Waksmundzka M. Sedimentological, palynological and geochemical studies of the terrestrial Triassic-Jurassic boundary in northwestern Poland[J]. Geological Magazine, 2012, 149(2): 308-332.
[43] Van de Schootbrugge B, Quan T M, Lindström S, et al. Floral changes across the Triassic/Jurassic boundary linked to flood basalt volcanism[J]. Nature Geoscience, 2009, 2(8): 589-594.
[44] Schoene B, Guex J, Bartolini A, et al. Correlating the end-Triassic mass extinction and flood basalt volcanism at the 100 ka level[J]. Geology, 2010, 38(5): 387-390.