Stenian
Template:Short description Template:Infobox geologic timespan The Stenian Period (/ˈstiːni.ən/ Script error: No such module "Respell"., from Template:Langx, meaning "narrow") is the final geologic period in the Mesoproterozoic Era and lasted from Expression error: Unexpected round operator Mya to Expression error: Unexpected round operator Mya (million years ago). Instead of being based on stratigraphy, these dates are defined chronometrically due to the scarcity of Precambrian fossils and lack of reliable zonation. It is preceded by the Ectasian Period and followed by the Neoproterozoic era and the Tonian period.
The supercontinent Rodinia finished assembly during the Stenian, having started during the Ectasian. It would last into the Tonian period before breaking up in the Cryogenian. Rodinia was surrounded by the Mirovian ocean during this time. This closed many seas that formed from the breakup of Columbia.[1]
History
Before the Stenian was defined as a period in 1991, the Riphean age was defined from 1600 to 600 Mya, primarily used in Russia and textbooks across the world.[2] The Stenian period was created in 1991 by K. A. Plumb as part of the New Precambrian time scale, defined as 1200 to 1000 Mya.[3] The name Stenian comes from Template:Langx, meaning narrow and referring to the narrow polymetamorphic belts in this period.[4]
Geography
Most reconstructions of Rodinia have Laurentia placed in the center of Rodinia, being surrounded by other cratons.[5] Laurentia itself was surrounded in the majority of interpretations by the East European Craton in the southeast, Amazonia in the south, the Río de la Plata Craton and possibly the Kalahari Craton and Congo Craton in the southeast, India and possibly East Antarctic Shield in the northeast, and the Australian cratons in the north. Siberia, North, and South China cratons vary significantly in position depending on the reconstruction.[6][7][8] Rodinia itself was surrounded by the superocean Mirovia.[1]
Geology
This period includes the formation of the Keweenawan Rift (the deepest failed rift on Earth) at about 1100 Mya, in which the rocks of the Keweenawan Supergroup are preserved.[9][10] Elsewhere, the Musgrave orogeny happened from 1.22 to 1.12 billion years ago forming the Musgrave Block, with the Warakurna Large igneous province forming at 1076 ± 6 million years ago.[11]
From 1.7 Gya to 1.1 Gya, there is a lack of paleosols. This also occurred from the end of the period onward to 0.7 Gya.[12] The seafloor was primarily non-oxic, with 25% oxic and recurring euxinic episodes.[13]
Orogenies
The Grenville orogeny mainly took place in this period spanning from 1250 to 980 Mya, with the Elzerian orogeny ending in this period, the Shawingian and Ottawan orogenies taking place entirely in the Stenian, and the Rigolet orogeny starting at 1010 Mya.[4]
Outside of North America and Australia, the Kibaran orogeny, the Dalslandian orogeny, and the Sunsás orogeny also took effect around this time. All of these orogenies helped form and stabilize the supercontinent Rodinia.[14][15][16]
The Torridonian supergroup was primarily formed along Scotland in this period onwards, being constrained to at most 1100 Mya.[17][18] The Nonesuch Shale was also formed around 1.1 Gya and spans from Michigan to Iowa.[19]
Biology
Fossils of the oldest known sexually reproducing organism, Bangiomorpha pubescens, first appeared in the Stenian at the Hunting Formation in Somerset Island around 1.047 Bya.[20][21][11][22] The first known preserved case of multicellularity in green algae also originates from this period, specifically Proterocladus antiquus known from roughly 1 billion years ago.[23]
Acritarchs became more abundant and spiny around this time, suggesting an increased rate in eukaryvory which forced an evolutionary response.[11]
Stromatolites peaked in diversity in this period and swiftly declined in numbers at the end of the period around 1 billion years ago.[24][25] Eukaryotes seem to have dominated non-marine habitats by 1 Ga.[26]
Climate
The Sun produced 5–18% less output during the Proterozoic, with the Stenian's output being in the middle of the range.[27] The CO2 levels were no more than 10x pre-industrial levels during this time, with a reasonable methogenic flux of 10–20x current levels.[27] The oxygen level during the Stenian was still low compared to today, being around 0.5% to 5% present atmospheric levels.[13][28] There were no major glaciation events and the length of day was approximately 18.94 ± 0.39 h.[29]
See also
Citations
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- ^ a b Page Module:Citation/CS1/styles.css has no content.Martin, E. L.; Spencer, C. J.; Collins, W. J.; Thomas, R. J.; Macey, P. H.; Roberts, N. M. W. (2020-12-01). "The core of Rodinia formed by the juxtaposition of opposed retreating and advancing accretionary orogens". Earth-Science Reviews. 211 103413. Bibcode:2020ESRv..21103413M. doi:10.1016/j.earscirev.2020.103413. ISSN 0012-8252.
- ^ Page Module:Citation/CS1/styles.css has no content.Paulamäki, Seppo; Kuivamäki, Aimo (May 2006). "Depositional History and Tectonic Regimeswithin and in the Margins of the Fennoscandian Shield During the last 1300 Million years" (PDF). Archived from the original (PDF) on 2018-02-27. Retrieved 2026-03-24.
- ^ Page Module:Citation/CS1/styles.css has no content.Plumb, K. A. (1991-06-01). "New Precambrian time scale". Episodes Journal of International Geoscience. 14 (2): 139–140. doi:10.18814/epiiugs/1991/v14i2/005.
- ^ a b Page Module:Citation/CS1/styles.css has no content.Tollo, Richard P. (2004-01-01). Proterozoic Tectonic Evolution of the Grenville Orogen in North America. Geological Society of America. ISBN 978-0-8137-1197-3.
- ^ Page Module:Citation/CS1/styles.css has no content.Li, Z.X.; Bogdanova, Svetlana V. (January 2008). "Assembly, configuration, and break-up history of Rodinia: A synthesis". ResearchGate. Retrieved March 26, 2026.
- ^ For a comparison of the SWEAT, AUSWUS, AUSMEX, and Missing-link reconstructions see Lua error in package.lua at line 80: module 'Module:Footnotes/anchor_id_list' not found.. For a comparison between the "consensus" Rodinia of Lua error in package.lua at line 80: module 'Module:Footnotes/anchor_id_list' not found. and the original proposal of Lua error in package.lua at line 80: module 'Module:Footnotes/anchor_id_list' not found. see Lua error in package.lua at line 80: module 'Module:Footnotes/anchor_id_list' not found..
- ^ Examples of reconstructions can be found in Lua error in package.lua at line 80: module 'Module:Footnotes/anchor_id_list' not found.; Lua error in package.lua at line 80: module 'Module:Footnotes/anchor_id_list' not found.; Lua error in package.lua at line 80: module 'Module:Footnotes/anchor_id_list' not found.; Lua error in package.lua at line 80: module 'Module:Footnotes/anchor_id_list' not found.; Lua error in package.lua at line 80: module 'Module:Footnotes/anchor_id_list' not found.
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- ^ a b c Page Module:Citation/CS1/styles.css has no content.R., Manjunath (July 3, 2021). Timelines of Nearly Everything. India: Manjunath.R. p. 167.
- ^ Page Module:Citation/CS1/styles.css has no content.Planavsky, Noah J.; Tarhan, Lidya G.; Bellefroid, Eric J.; Evans, David A.D.; Reinhard, Christopher T.; Love, Gordon D.; Lyons, Timothy W. (1 May 2016). "LATE PROTEROZOIC TRANSITIONS IN CLIMATE, OXYGEN, AND TECTONICS, AND THE RISE OF COMPLEX LIFE" (PDF). Retrieved 24 March 2026.
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- ^ Page Module:Citation/CS1/styles.css has no content.Trewin, N. H. (2003-02-24). The Geology of Scotland, 4th edition. Geological Society of London. ISBN 978-1-86239-126-0.
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- ^ Page Module:Citation/CS1/styles.css has no content.Butterfield, Nicholas J. (2000). "Bangiomorpha pubescens n. gen., n. sp.: implications for the evolution of sex, multicellularity, and the Mesoproterozoic/Neoproterozoic radiation of eukaryotes". Cambridge University Press. 26 (3): 386–404. Bibcode:2000Pbio...26..386B. doi:10.1666/0094-8373(2000)026<0386:BPNGNS>2.0.CO;2.
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- ^ Page Module:Citation/CS1/styles.css has no content.Winner, Cherie (November 15, 2013). "What Doomed the Stromatolites?". Woods Hole Oceanographic Institution. Retrieved 2026-03-24.
- ^ Page Module:Citation/CS1/styles.css has no content.McGuinness, Marian (2021-01-18). "Stromatolites: The Earth's oldest living lifeforms". BBC. Retrieved 2026-03-24.
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- ^ a b Page Module:Citation/CS1/styles.css has no content.Sheldon, Nathan D.; Mitchell, Ria L.; Dzombak, Rebecca M. (February 2021). Reconstructing Precambrian pCO2 and pO2 Using Paleosols. Bibcode:2021rppp.book.....S. doi:10.1017/9781108870962. ISBN 978-1-108-87096-2. Retrieved March 25, 2026.
{{cite book}}:|journal=ignored (help) - ^ Page Module:Citation/CS1/styles.css has no content.Planavsky, Noah J.; Tarhan, Lidya G.; Bellefroid, Eric J.; Evans, David A. D.; Reinhard, Christopher T.; Love, Gordon D.; Lyons, Timothy W. (October 2015). "Late Proterozoic Transitions in Climate, Oxygen, and Tectonics, and the Rise of Complex Life". The Paleontological Society Papers. 21: 47–82. doi:10.1017/S1089332600002965. ISSN 1089-3326.
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Further reading
- Page Module:Citation/CS1/styles.css has no content."Stenian Period". GeoWhen Database. Archived from the original on May 12, 2006. Retrieved January 5, 2006.
- Page Module:Citation/CS1/styles.css has no content.James G. Ogg (2004). "Status on Divisions of the International Geologic Time Scale". Lethaia. 37 (2): 183–199. Bibcode:2004Letha..37..183O. doi:10.1080/00241160410006492.
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