[1] 李美俊,王铁冠,杨福林,等. 凝析油藏充注方向示踪分子标志物:烷基二苯并呋喃[J]. 石油天然气学报,2011,33(3):6-11,17.

Li Meijun, Wang Tieguan, Yang Fulin, et al. Molecular tracer markers for filling pathway in condensate reservoirs: Alkyldibenzofuran[J]. Journal of Oil and Gas Technology, 2011, 33(3): 6-11, 17.
[2] Radke M, Vriend S P, Ramanampisoa L R. Alkyldibenzofurans in terrestrial rocks: Influence of organic facies and maturation[J]. Geochimica et Cosmochimica Acta, 2000, 64(2): 275-286.
[3] Hughes W B, Holba A G, Dzou L I P. The ratios of dibenzothiophene to phenanthrene and pristane to phytane as indicators of depositional environment and lithology of petroleum source rocks[J]. Geochimica et Cosmochimica Acta, 1995, 59(17): 3581-3598.
[4] Shultz J L, Kessler T, Friedel R A, et al. High-resolution mass spectrometric investigation of heteroatom species in coal-carbonization products[J]. Fuel, 1972, 51(3): 242-246.
[5] Borwitzky H, Schomburg G. Separation and identification of polynuclear aromatic compounds in coal tar by using glass capillary chromatography including combined gas chromatography-mass spectrometry[J]. Journal of Chromatography A, 1979, 170(1): 99-124.
[6] Guillén M D, Iglesias M J, Dominguez A, et al. Polynuclear aromatic hydrocarbon retention indices on SE-54 stationary phase of the volatile components of a coal tar pitch: Relationships between chromatographic retention and thermal reactivity[J]. Journal of Chromatography A, 1992, 591(1/2): 287-295.
[7] Marynowski L, Kurkiewicz S, Rakociński M, et al. Effects of weathering on organic matter: I. Changes in molecular composition of extractable organic compounds caused by paleoweathering of a Lower Carboniferous (Tournaisian) marine black shale[J]. Chemical Geology, 2011, 285(1/2/3/4): 144-156.
[8] 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(12): 785-798.
[9] Li M J, Ellis G S. Qualitative and quantitative analysis of dibenzofuran, alkyldibenzofurans, and benzo[b]naphthofurans in crude oils and source rock extracts[J]. Energy & Fuels, 2015, 29(3): 1421-1430.
[10] Ogbesejana A B, Bello O M. Distribution and geochemical significance of dibenzofurans, phenyldibenzofurans and benzo[b]naphthofurans in source rock extracts from Niger Delta Basin, Nigeria[J]. Acta Geochimica, 2020, 39(6): 973-987.
[11] Grafka O, Marynowski L, Simoneit B R T. Phenyl derivatives of polycyclic aromatic compounds as indicators of hydrothermal activity in the Silurian black siliceous shales of the Bardzkie Mountains, Poland[J]. International Journal of Coal Geology, 2015, 139: 142-151.
[12] Cesar J, Grice K. The significance of benzo[b]naphtho[d]furans in fluids and source rocks: New indicators of facies type in fluvial-deltaic systems[J]. Organic Geochemistry, 2017, 113: 175-183.
[13] Ogbesejana A B, Zhong N N, Sonibare O O. Occurrence and distribution of dibenzofurans and benzo[b]naphthofurans in the crude oils from the northern and offshore Niger Delta Basin, Nigeria[J]. Petroleum Science and Technology, 2019, 37(18): 1969-1977.
[14] 叶加仁,顾惠荣,贾健谊. 东海西湖凹陷油气地质条件及其勘探潜力[J]. 海洋地质与第四纪地质,2008,28(4):111-116.

Ye Jiaren, Gu Huirong, Jia Jianyi. Petroleum geological condition and exploration potential of Xihu Depression, East China Sea[J]. Marine Geology & Quaternary Geology, 2008, 28(4): 111-116.
[15] 李纯洁,李上卿,许红. 西湖凹陷中—下始新统宝石组油气地质与勘探潜力[J]. 海洋地质与第四纪地质,2004,24(4):81-87.

Li Chunjie, Li Shangqing, Xu Hong. Petroleum geologic characteristics and exploration potential of Middle-Lower Eocene Baoshi Formation in the Xihu Sag[J]. Marine Geology & Quaternary Geology, 2004, 24(4): 81-87.
[16] 陈琳琳. 东海西湖凹陷平湖组沉积环境演化[J]. 海洋地质与第四纪地质,1998,18(4):69-78.

Chen Linlin. Depositional environment evolution of Pinghu Formation in Xihu Depression, the East China Sea[J]. Marine Geology & Quaternary Geology, 1998, 18(4): 69-78.
[17] Cheng X, Hou D J, Zhao Z, et al. Sources of natural gases in the Xihu Sag, East China Sea Basin: Insights from stable carbon isotopes and confined system pyrolysis[J]. Energy & Fuels, 2019, 33(3): 2166-2175.
[18] Zhu Y M, Li Y, Zhou J, et al. Geochemical characteristics of Tertiary coal-bearing source rocks in Xihu Depression, East China Sea Basin[J]. Marine and Petroleum Geology, 2012, 35(1): 154-165.
[19] 刘池洋,赵红格,桂小军,等. 鄂尔多斯盆地演化—改造的时空坐标及其成藏(矿)响应[J]. 地质学报,2006,80(5):617-638.

Liu Chiyang, Zhao Hongge, Gui Xiaojun, et al. Space-time coordinate of the evolution and reformation and mineralization response in Ordos Basin[J]. Acta Geologica Sinica, 2006, 80(5): 617-638.
[20] 杨华,付金华,刘新社,等. 鄂尔多斯盆地上古生界致密气成藏条件与勘探开发[J]. 石油勘探与开发,2012,39(3):295-303.

Yang Hua, Fu Jinhua, Liu Xinshe, et al. Accumulation conditions and exploration and development of tight gas in the Upper Paleozoic of the Ordos Basin[J]. Petroleum Exploration and Development, 2012, 39(3): 295-303.
[21] 田文广,肖建新,张继东,等. 鄂尔多斯盆地东缘煤层气储盖特征及其控气作用[J]. 煤田地质与勘探,2015,43(4):31-35.

Tian Wenguang, Xiao Jianxin, Zhang Jidong, et al. CBM reservoir-cap formation type and its gas controlling function in the eastern margin of Ordos Basin[J]. Coal Geology & Exploration, 2015, 43(4): 31-35.
[22] Li D S, Liang D G, Jia C Z, et al. Hydrocarbon accumulations in the Tarim Basin, China[J]. AAPG Bulletin, 1996, 80(10): 1587-1603.
[23] Liang D G, Zhang S C, Chen J P, et al. Organic geochemistry of oil and gas in the Kuqa Depression, Tarim Basin, NW China[J]. Organic Geochemistry, 2003, 34(7): 873-888.
[24] Zhu Z L, Li M J, Li J Y, et al. Identification, distribution and geochemical significance of dinaphthofurans in coals[J]. Organic Geochemistry, 2022, 166: 104399.
[25] Zhu Z L, Li M J, Tang Y J, et al. Identification of phenyldibenzothiophenes in coals and the effects of thermal maturity on their distributions based on geochemical data and theoretical calculations[J]. Organic Geochemistry, 2019, 138: 103910.
[26] Li M J, Liu X Q, Wang T G, et al. Fractionation of dibenzofurans during subsurface petroleum migration: Based on molecular dynamics simulation and reservoir geochemistry[J]. Organic Geochemistry, 2018, 115: 220-232.
[27] 刘晓强,李美俊,唐友军,等. 有机质中三联苯成熟度参数及其化学机理:基于地球化学数据和量子化学计算[J]. 地球化学,2020,49(2):218-226.

Liu Xiaoqiang, Li Meijun, Tang Youjun, et al. Maturity indicators and its mechanism of triphenyls in sedimentary organic matter: Based on geochemical data and quantum chemical calculation[J]. Geochimica, 2020, 49(2): 218-226.
[28] 李贤庆,钟宁宁,熊波,等. 全岩分析在烃源岩研究中的应用及与干酪根分析的比较[J]. 石油勘探与开发,1995,22(3):30-35,40.

Li Xianqing, Zhong Ningning, Xiong Bo, et al. The application of whole rock analysis technique on source rock and a comparison with the result from kerogen analysis[J]. Petroleum Exploration and Development, 1995, 22(3): 30-35, 40.
[29] Huang W Y, Meinschein W G. Sterols as ecological indicators[J]. Geochimica et Cosmochimica Acta, 1979, 43(5): 739-745.
[30] Peters K E, Walters C C, Moldowan J M. The biomarker guide: Biomarkers and isotopes in petroleum systems and earth history[M]. Cambridge: Cambridge University Press, 2005.
[31] Didyk B M, Simoneit B R T, Brassell S C, et al. Organic geochemical indicators of palaeoenvironmental conditions of sedimentation[J]. Nature, 1978, 272(5650): 216-222.