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Depositional environment and source rock characteristics in the Eastern Paratethys – Interpretation of organic matter in the Kura Basin (Azerbaijan) Cover

Depositional environment and source rock characteristics in the Eastern Paratethys – Interpretation of organic matter in the Kura Basin (Azerbaijan)

Open Access
|Aug 2026

References

  1. Abella C., Moutesinos E., Guerrero R.M., 1980. Field studies on the competition between purple and green sulfur bacteria for available light (Lake Siso, Spain). In: Dokulil M., Metz H., Jewson D. (eds.), Shallow Lakes: Contributions to their Limnology. Developments in Hydrobiology, 3. Springer, Dordrecht, 173–181. https://doi.org/10.1007/978-94-009-9206-1_26
  2. Aghayeva V., Sachsenhofer R.F., van Baak C.G.C., Bechtel A., Hoyle T.M., Selby D., Shiyanova N., Vincent S.J., 2021. New geochemical insights into Cenozoic source rocks in Azerbaijan: Implications for petroleum systems in the South Caspian Region. Journal of Petroleum Geology, 44, 349–384. https://doi.org/10.1111/jpg.12797
  3. Aghayeva V., Sachsenhofer R.F., van Baak C.G.C, Bayramova Sh., Ćorić S., Fruhwirth M.J., Rzayeva E., Vincent S.J., 2023. Stratigraphy of the Cenozoic succession in eastern Azerbaijan: Implications for petroleum systems and paleogeography in the Caspian Basin. Marine and Petroleum Geology, 150, 106148. https://doi.org/10.1016/j.marpetgeo.2023.106148
  4. Baudelet P.-H., Ricochon G., Linder M., Muniglia L., 2017. A new insight into cell walls of Chlorophyta. Algal Research, 25, 333–371. http://dx.doi.org/10.1016/j.algal.2017.04.008
  5. Beniamovski V.N., Alekseev A.S., Ovechkina M.N., Oberhansli H., 2003. Middle to upper Eocene dysoxic-anoxic Kuma Formation (northeast Peri-Tethys): Biostratigraphy and paleoenvironments. In: Wing S.L., Gingerich P.D., Schmitz B., Thomas E. (eds.), Causes and Consequences of Globally Warm Climates in the Early Paleogene. Boulder, Colorado, Geological Society of America Special Paper, 369, 95–112. https://doi.org/10.1130/0-8137-2369-8.95
  6. Berkaloff C., Casadevall E., Largeau C., Peracca M.S., Virlet J., 1983. The resistant polymer of the walls of the hydrocarbon-rich alga Botryococcus braunii. Phytochemistry, 22, 389–397. https://doi.org/10.1016/0031-9422(83)83010-6
  7. Berner R.A., 1984. Sedimentary pyrite formation: An update. Geochimica et Cosmochimica Acta, 48, 605–615. https://doi.org/10.1016/0016-7037(84)90089-9
  8. Blackbourn G., Tevzadze N., Janiashvili A., Enukidze O., Alania V., 2021. South Caucasus palaeogeography and prospectivity: elements of petroleum systems from the Black Sea to the Caspian. Journal of Petroleum Geology, 44, 237–258. https://doi.org/10.1111/jpg.12792
  9. Blokker P., Schouten S., van den Ende H., de Leeuw J., Hatcher P.G., Sinninghe Damste J.S., 1998. Chemical structure of algaenans from the fresh water algae Tetraedron minimum, Scenedesmus communis and Pediastrum boryanum. Organic Geochemistry, 29, 1453–1468. https://doi.org/10.1016/S0146-6380(98)00111-9
  10. Boote D.R.D., Sachsenhofer R.F., Tari G., Arbouille D., 2018. Petroleum provinces of the Paratethyan region. Journal of Petroleum Geology, 41, 247–298. https://doi.org/10.1111/jpg.12703
  11. Bray E.E., Evans E.D., 1961. Distribution of n-paraffins as a clue to recognition of source beds. Geochimica et Cosmochimica Acta, 22, 2–5. https://doi.org/10.1016/0016-7037(61)
  12. Cane R.F., Albion P.R., 1973. The organic geochemistry of torbanite precursors. Geochimica et Cosmochimica Acta, 37, 1543–1549. https://doi.org/10.1016/0016-7037(73)90089-6
  13. Clegg H., Horsfield B., Stasiuk L., Fowler M., Vliex M., 1997. Geochemical characterisation of organic matter in Keg River Formation (Elk point group, Middle Devonian), La Crete Basin, Western Canada. Organic Geochemistry, 26, 627–643. https://doi.org/10.1016/S0146-6380(97)00029-6
  14. Cramwinckel M.J., van der Ploeg R., van Helmond N.A.G.M., Waarlo N., Agnini C., Bijl P.K., van der Boon A., Brinkhuis H., Frieling J., Krijgsman W., Mather T.A., Middelburg J.J., Peterse F., Slomp C.P., Sluijs A., 2022. Deoxygenation and organic carbon sequestration in the Tethyan realm associated with the middle Eocene climatic optimum. Geological Society America Bulletin, 135, 1280–1286. https://doi.org/10.1130/B36280.1
  15. Davis J.B., 1968. Paraffinic hydrocarbons in the sulfate reducing bacterium Desulfovibrio desulfuricans. Chemical Geology, 3, 155–160. https://doi.org/10.1016/0009-2541(68)90007-7
  16. Demaison G., Huizinga B.J., 1991. Genetic classification of petroleum systems. AAPG Bulletin, 75, 1626–1643. https://doi.org/10.1306/0C9B29BB-1710-11D7-8645000102C1865D
  17. Derenne S., Le Berre F., Largeau C., Hatcher P., Connan J., Raynaud J.F., 1992. Formation of ultralaminae in marine kerogens via selective preservation of thin resistant outer walls of microalgae. Organic Geochemistry, 19, 345–350. https://doi.org/10.1016/0146-6380(92)90004-H
  18. Didyk B.M., Simoneit B.R.T., Brassell S.T., Eglinton G., 1978. Organic geochemical indicators of palaeoenvironmental conditions of sedimentation. Nature, 272, 216–222. https://doi.org/10.1038/272216a0
  19. Eglinton T.I., Sinninghe Damste J.S., Kohnen M.E.L., de Leeuw J.W., 1990. Rapid estimation of the organic sulphur content of kerogens, coals and asphaltenes by pyrolysis-gas chromatography. Fuel, 69, 1394–1404. https://doi.org/10.1016/0016-2361(90)90121-6
  20. Gagosian R., Smith S., 1979. Steroids ketones in surface sediments from the south-west African shelf. Nature, 277, 287–289. https://doi.org/10.1038/277287a0
  21. Giner J.-L., Faraldos J.A., Boyer G.L., 2003. Novel sterols of the toxic dinoflagellate Karenia brevis (Dinophyceae). A defensive function for unusual marine sterols. Journal of Phycology, 39, 315–319. https://doi.org/10.1046/j.1529-8817.2003.01254.x
  22. Goncalves P.A., Kus J., Hackley P.C., Borrego A.G., Haamor-Vido M., Kalkreuth W., Mendonca Filho J.G., Petersen H.I., Pickel W., Reinhardt M.J., Suarez-Ruiz I., 2024. The petrology of dispersed organic matter in sedimentary rocks: Review and update. International Journal of Coal Geology, 294, 104604. https://doi.org/10.1016/j.coal.2024.104604
  23. Goodwin N., Abdullayev N., Javadova A., Volk H., Riley G., 2020. Diamondoids and basin modelling reveal one of the World’s deepest petroleum systems, South Caspian basin, Azerbaijan. Journal of Petroleum Geology, 43, 133–149. https://doi.org/10.1111/jpg.12754
  24. Guliyev I.S., Mamedov P.Z., Feyzullayev A.A., Huseynov D.A., Kadirov F.A., Aliyeva E.H.-M., Tagiyev M.F., 2003. Hydrocarbon Systems of the South Caspian Basin. Baku, Hydrocarbon Systems of the South Caspian Basin. “Nafta-Press”, Baku, 206 pp.
  25. Han J., Calvin M., 1969. Hydrocarbon distribution of algae and bacteria, and microbial activity in sediments. Proceedings of the National Academy of Sciences of the United States of America, 64, 436–443. https://doi.org/10.1073/pnas.64.2.436
  26. Hartgers W.A., Sinninghe Damste J.S., de Leeuw J.W., 1994. Geochemical significance of alkylbenzene distributions in flash pyrolysates of kerogens, coals, and asphaltenes. Geochimica et Cosmochimica Acta, 58, 1759–1775. https://doi.org/10.1016/0016-7037(94)90535-5
  27. Holba A.G., Tegelaar E.W., Huizinga B.J., Moldowan J.M., Singletary M.S., McCaffrey M.A., Dzou L.I.P., 1998. 24-Norcholestanes as age-sensitive molecular fossils. Geology, 26, 783–786. https://doi.org/10.1130/0091-7613(1998)026<0783:NAASMF>2.3.CO;2
  28. Horsfield B., 1989. Practical criteria for classifying kerogens: Some observations from pyrolysis-gas chromatography. Geochimica et Cosmochimica Acta, 53, 891–901. https://doi.org/10.1016/0016-7037(89)90033-1
  29. Horsfield B., Curry D.J., Bohacs K., Littke R., Rullkotter J., Schenk H.J., Radke M., Schaefer R.G., Carroll A.R., Isaksen G., Witte E.G., 1994. Organic geochemistry of freshwater and alkaline lacustrine sediments in the Green River Formation of the Washakie Basin, Wyoming, U.S.A. Organic Geochemistry, 22, 415–440. https://doi.org/10.1016/0146-6380(94)90117-1
  30. Jaramillo-Madrid A.C., Ashworth J., Ralph P.J., 2020. Levels of diatom minor sterols respond to changes in temperature and salinity. Journal of Marine Science and Engineering, 8, 85. https://doi.org/10.3390/jmse8020085
  31. Kamenarska Z.G., Dimitrova-Konaklieva S.D., Stefanov K.L., Popov S.S., 2003. A comparative study on the sterol composition of some brown algae from the Black Sea. Journal of the Serbian Chemical Society, 68, 269–275. https://doi.org/10.2298/JSC0305269K
  32. Katz B., Richards D., Long D., Lawrence W., 2000. A new look at the components of the petroleum system of the South Caspian Basin. Journal of Petroleum Science and Engineering, 28, 161–182. https://doi.org/10.1016/S0920-4105(00)00076-0
  33. Largeau C., Casadevall E., Kadouri A., Metzger P., 1984. Formation of Botryococcus-derived kerogens – Comparative study of immature torbanites and of the extent alga Botryococcus braunii. Organic Geochemistry, 6, 327–332. https://doi.org/10.1016/0146-6380(84)90054-8
  34. Larter S.R., 1984. Application of Analytical Pyrolysis Techniques to Kerogen Characterisation and Fossil Fuel Exploration/Exploitation. In: Voorhees K. (ed.), Analytical pyrolysis, methods and applications. Butterworth, London, pp. 212–275.
  35. Louda J.W., Baker E.W., 1984. Perylene occurrence, alkylation and possible sources in deep-ocean sediments. Geochimica et Cosmochimica Acta, 48, 1043–1058. https://doi.org/10.1016/0016-7037(84)90195-9
  36. Marynowski L., Smolarek J., Bechtel A., Philippe M., Kurkiewicz S., Simoneit B.R.T., 2013. Perylene as an indicator of conifer fossil wood degradation by wood-degrading fungi. Organic Geochemistry, 59, 143–151. https://doi.org/10.1016/j.orggeochem.2013.04.006
  37. Metzger P., Largeau C., 2005. Botryococcus braunii: a rich source for hydrocarbons and related ether lipids. Applied Microbiology and Biotechnology, 66, 486–496. https://doi.org/10.1007/s00253-004-1779-z
  38. Moldowan J.M., Fago F.J., Lee C.J., Jacobson S.R., Watt D.S., Slougui N.E., Jeganathan A., Young D.C., 1990. Sedimentary 24-n-cholestanes, molecular fossils diagnostic of marine algae. Science, 247, 309–312. https://doi.org/10.1126/science.247.4940.309
  39. Otto A., Wilde V., 2001. Sesqui-, di-, and triterpenoids as chemosystematic markers in extant conifers – A review. The Botanical Review, 67, 141–238. https://doi.org/10.1007/BF02858076
  40. Palcu D.V., Krijgsman W., 2022. The dire straits of Paratethys: gateways to the anoxic giant of Eurasia. In: Rossi V.M., Longhitano S., Olariu C., Chiocci F. (eds.), Straits and Seaways: Controls, Processes and Implications in Modern and Ancient Systems. Geological Society, London, Special Publications, 523, 111–139. https://doi.org/10.1144/SP523-2021-73
  41. Palcu D.V., Popov S.V., Golovina L.A., Kuiper K.F., Liu S., Krijgsman W., 2019. The shutdown of an anoxic giant: magnetostratigraphic dating of the end of the Maikop Sea. Gondwana Research, 67, 82–100. https://doi.org/10.1016/j.gr.2018.09.011
  42. Palcu D.V., Patina I.S., Sandric I., Lazarev S., Vasiliev I., Stoica M., Krijgsman W., 2021. Late Miocene megalake regressions in Eurasia. Scientific Reports, 11:11471. https://doi.org/10.1038/s41598-021-91001-z
  43. Peters K.E., Walters C.C., Moldowan J.M., 2005. The Biomarker Guide, Volume 2: Biomarkers and Isotopes in the Petroleum Exploration and Earth History. Cambridge Unversity Press, Cambridge, 475–1155.
  44. Popov S.V., Rogl F., Rozanov A.Y., Steininger F.F., Shcherba I.G., Kovač M., 2004. Lithological-Paleogeographical maps of Paratethys. 10 Maps Late Eocene to Pliocene. Courier Forschungsinstitut Senckenberg, 250, 1–46.
  45. Popov S.V., Sychevskaya E.K., Akhmetiev M.A., Zaporozhets N.I., Golovina L.A., 2008. Stratigraphy of the Maikop Group and Pteropoda Beds in Northern Azerbaijan. Stratigraphy and Geological Correlation, 16, 664–677. https://link.springer.com/article/10.1134/S0869593808060063
  46. Pupp M., Bechtel A., Coric S., Gratzer R., Rustamov, J., Sachsenhofer, R.F., 2018. Eocene and Oligo-Miocene source rocks in the Rioni and Kura Basins of Georgia: Depositional environment and petroleum potential. Journal of Petroleum Geology, 41, 367–392. https://doi.org/10.1111/jpg.12708
  47. Rampen S.W., Schouten S., Abbas B., Panoto F.E., Muyzer G., Campbell C.N., Fehling J., Sinninghe Damste J.S., 2007. On the origin of 24-norcholestanes and their use as age-diagnostic biomarkers. Geology, 35, 419–422. https://doi.org/10.1130/G23358A.1
  48. Rampen S.W., Schouten S., Hopmans E.C., Abbas B., Noordeloos A.A.M., Geenevasen J.A.J., Moldowan J.M., Denisevich P., Sinninghe Damste J.S., 2009. Occurrence and biomarker potential of 23-methyl steroids in diatoms and sediments. Organic Geochemistry, 40, 219–228. https://doi.org/10.1016/j.orggeochem.2008.10.006
  49. Rampen S.W., Abba, B.A., Schouten S., Sinninghe Damste J.S., 2010. A comprehensive study of sterols in marine diatoms (Bacillariophyta): Implications for their use as tracers for diatom productivity. Limnology and Oceanography, 55, 91–105. https://doi.org/10.4319/lo.2010.55.1.0091
  50. Requejo A.G., Allan J., Creaney S., Gray N.R., Cole K.S., 1992. Aryl isoprenoids and diaromatic carotenoids in Paleozoic source rocks and oils from the Western Canada and Williston Basins. Organic Geochemistry, 19, 245–264. https://doi.org/10.1016/0146-6380(92)90041-U
  51. Risatti J.B., Rowland S.J., Yon D.A., Maxwell J.R., 1984. Sterochemical studies of acyclic isoprenoids – XII. Lipids of methanogenic bacteria and possible contributors to sediments. Organic Geochemistry, 6, 93–104. https://doi.org/10.1016/0146-6380(84)90030-5
  52. Rowland S.J., 1990. Production of acyclic isoprenoid hydrocarbons by laboratory maturation of methanogenic bacteria. Organic Geochemistry, 15, 9–16. https://doi.org/10.1016/0146-6380(90)90181-X
  53. Sachsenhofer R.F., Popov S.V., Bechtel A., Coric S., Francu J., Gratzer R., Grunert P., Kotarba M., Mayer J., Pupp M, Rupprecht B.J., 2018a. Oligocene and Lower Miocene source rocks in the Paratethys: Palaeogeographic and stratigraphic controls. In: Simmons M. (ed.), Petroleum Geology of the Black Sea. Geological Society, London, Special Publications, 464, pp. 267–306. https://doi.org/10.1144/SP464.1
  54. Sachsenhofer R.F., Popov S.V. Coric S., Mayer J., Misch D., Morton M.T., Pupp M., Rauball J., Tari G., 2018b. Paratethyan petroleum source rocks: An overview. Journal of Petroleum Geology, 41, 219–245. https://doi.org/10.1111/jpg.12702
  55. Sachsenhofer R.F., Aghayeva V., Ajuaba S., Kojić I., Misch D., Stojanović K., 2025. Horgen-Kapfnach, the largest Swiss coal deposit: geology, petrology and geochemistry. International Journal of Coal Geology 299, 104684. https://doi.org/10.1016/j.coal.2025.104684
  56. Saint-Germes M., 1998. Etude sedimentologique et geochimique de la matiere organique du bassin Maykopien (Oligocene-Miocene Inferieur) de la Crimee a l’Azerbaidjan. Memoires des Sciences de la Terre. Academie de Paris Universite Pierre et Marie Curie. 295 pp.
  57. Schouten S., van der Maarel M.J.E.C., Huber R., Sinninghe Damste J. S., 1997. 2,6,10,15,19-Pentamethylicosenes in Methanolobus bombayensis, a marine methanogenic archaeon, and in Methanosarcina mazei. Organic Geochemistry, 26, 409–414. https://doi.org/10.1016/S0146-6380(97)00011-9
  58. Schulz H.-M., Bechtel A., Sachsenhofer R.F., 2005. The birth of the Paratethys during the early Oligocene: from Tethys to an ancient Black Sea analogue? Global and Planetary Change, 49, 163–176. https://doi.org/10.1016/j.gloplacha.2005.07.001
  59. Shiea J., Brassell S.C., Ward D.M., 1990. Mid-chain branched monoand dimethyl alkanes in hot spring cyanobacterial mats: a direct biogenic source for branched alkanes in ancient sediments? Organic Geochemistry, 15, 223–231. https://doi.org/10.1016/0146-6380(90)90001-G
  60. Silliman J.E., Meyers P.A., Ostrom P.H., Ostrom N.W., Eadie B.J., 2000. Insights into the origin of perylene from isotopic analyses of sediments from Saanich Inlet, British Columbia. Organic Geochemistry, 31, 1133–1142. https://doi.org/10.1016/S0146-6380(00)00120-0
  61. Sinninghe Damste J.S., Kock-Van Dalen A.C., de Leeuw J.W., Schenck P.A., Guoying S., Brassell S.C., 1987. The identification of mono-, diand tri-methyl 2-methyl-2-(4,8,12-trimethyltridecyl)chromans and their occurrence in the geosphere. Geochimica et Cosmochimica Acta, 51, 2393–2400. https://doi.org/10.1016/0016-7037(87)90292-4
  62. Sinninghe Damste J.S., van Koert E.R., Kock-van Dalen A.C., de Leeuw J.W., Schenck P.A., 1989a. Characterisation of highly branched isoprenoid thiophenes occurring in sediments and immature crude oils. Organic Geochemistry, 14, 555–567. https://doi.org/10.1016I0146-6380(89)90035-1
  63. Sinninghe Damste J.S., Rijpstra W.I.C., de Leeuw J.W., Schenck P.A., 1989b. The occurrence and identification of series of organic sulfur compounds in oils and sediment extracts II. Their presence in samples from hypersaline and non-hypersaline palaeoenvironments and possible application as source, palaeoenvironmental and maturity indicators. Geochimica et Cosmochimica Acta, 53, 1323–1341. https://doi.org/10.1016/0016-7037(89)90066-5
  64. Sinninghe Damste J.S., Schouten S., Rijpstra W.I.C., Hopmans E.C., Peletier H., Gieskes W.W.C., Geenevasen J.A.J., 2000. Novel polyunsaturated n-alkenes in the marine diatom Rhizosolenia setigera. European Journal of Biochemistry, 267, 5727–5732. https://doi.org/10.1046/j.1432-1327.2000.01636.x
  65. Stonik V., Stonik I., 2015. Low-Molecular-Weight Metabolites from Diatoms: Structures, Biological Roles and Biosynthesis. Marine Drugs, 13, 3672–3709. https://doi.org/10.3390/md13063672
  66. Summons R.E., 1993. Biogeochemical cycles: A review of fundamental aspects of organic matter formation, preservation, and composition. In: Engel M.H., Macko S.A. (eds.), Organic geochemistry: Principles and Applications. Plenum Press, New York, pp. 3–21.
  67. Tari G., Blackbourn G., Boote D., Sachsenhofer R., Yukler A., 2021. Exploration plays in the Caucasus Region. Journal of Petroleum Geology, 44, 213–236. https://doi.org/10.1111/jpg.12791
  68. Taylor G.H., Teichmuller M., Davis A., Diessel C.F.K., Littke R., Robert P., 1998. Organic Petrology. Gebruder Borntraeger, Berlin, 704 pp.
  69. Ten Haven H.L., Rohmer M., Rullkotter J., Bisseret P., 1989. Tetrahymanol, the most likely precursor of gammacerane, occurs ubiquitously in marine sediments. Geochimica et Cosmochimica Acta, 53, 3073–3079. https://doi.org/10.1016/0016-7037(89)90186-5
  70. van der Boon A., van der Ploeg R., Cramwinckel M.J., Kuiper K.F., Popov S.V., Tabachinkova I.P., Palcu D.V., Krijgsman W., 2019. Integrated stratigraphy of the Eocene-Oligocene deposits of the northern Caucasus (Belaya River, Russia): intermittent oxygen-depleted episodes in the Peri-Tethys and Paratethys. Palaeogeography, Palaeoclimatology, Palaeoecology, 536, 109395. https://doi.org/10.1016/j.palaeo.2019.109395
  71. Venkatesan M.I., 1988. Occurrence and possible sources of perylene in marine sediments-a review. Marine Chemistry, 25, 1–27. https://doi.org/10.1016/0304-4203(88)90011-4
  72. Volkman J.K., Hallegraeff, G.M., 1998. Lipids in marine diatoms of the genus Thalassiosira: Predominance of 24-methylenecholesterol. Phytochemistry, 27, 1389–1394. https://doi.org/10.1016/0031-9422(88)80200-0
  73. Volkman J.K, Barnett S.M. Dunstan G.A., 1994. C25 and C30 highly branched isoprenoid alkenes in laboratory cultures of two marine diatoms. Organic Geochemistry, 21, 407–413. https://doi.org/10.1016/0146-6380(94)90202-X
  74. Waskowska A., 2015. Stratigraphy of the Hieroglyphic Beds with “Black Eocene” facies in the Silesian Nappe (Outer Flysch Carpathians, Poland). Annales Societatis Geologorum Poloniae, 85, 321-343. https://doi.org/10.14241/asgp.2015.011
  75. Weber V.V., 1935. Geological map of the Kabristan. Tr. NGRI. Ser. A 62, 1–300 (in Russian).
  76. Wolff G.A., Ruskin N., Marshal J.D., 1992. Biogeochemistry of an early diagenetic concretion from the Birchi Bed (L. Lias, W. Dorset, UK). Organic Geochemistry, 19, 431–444. https://doi.org/10.1016/0146-6380(92)90010-U
DOI: https://doi.org/10.17738/ajes.2026.0006 | Journal eISSN: 2072-7151 | Journal ISSN: 0251-7493
Language: English
Page range: 89 - 114
Submitted on: Mar 16, 2026
Accepted on: Jul 18, 2026
Published on: Aug 20, 2026
Published by: Austrian Geological Society
In partnership with: Paradigm Publishing Services

© 2026 Vusala Aghayeva, Reinhard F. Sachsenhofer, Nicolaj Mahlstedt, Chris G.C. van Baak, Shafag Bayramova, David Misch, Ksenija Stojanović, published by Austrian Geological Society
This work is licensed under the Creative Commons Attribution 4.0 License.