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Provenance studies and basin evolution: Insight from the Yukon-Koyukuk Basin, Alaska
Stockholm University, Faculty of Science, Department of Geological Sciences.ORCID iD: 0009-0001-5044-5265
Stockholm University, Faculty of Science, Department of Geological Sciences.ORCID iD: 0000-0003-0498-1849
2025 (English)In: Sedimentology, ISSN 0037-0746, E-ISSN 1365-3091, Vol. 72, no 2, p. 666-687Article in journal (Refereed) Published
Abstract [en]

The Yukon–Koyukuk Basin is a wide, triangular depression in northern Alaska that initiated as the consequence of the collision between an intraoceanic arc and the Arctic Alaska margin. It is bordered by the metamorphic terranes of the Seaward Peninsula, the Brooks Range and the Ruby Terrane. The Yukon–Koyukuk Basin is divided into two sub-basins separated by remnants of the volcanic arc. Two different models have been suggested for its formation. One model interprets the Yukon–Koyukuk Basin to have formed during collision in a forearc–backarc setting, while the other favours an extensional regime that was active after the cessation of collision. To test the two models, ten sedimentary samples from the two stratigraphically lowest units cropping out along the middle reaches of the Koyukuk River were analysed. Point counting and Quantitative Evaluation of Minerals by Scanning Electron Microscopy (QEMSCAN®) are used to evaluate sedimentary provenance. This study also presents zircon U–Pb ages from three interbedded tuffaceous layers to better constrain the age of the units. The base of the succession indicates a volcanic source (enriched in clinopyroxene) deposited at ca 138.3 ± 0.8 Ma (2σ), while younger overlying strata are dominated by metamorphic input (enriched in garnet and epidote) reflecting the erosion of the surrounding metamorphic terranes at ca 112.6 ± 1.1 Ma (2σ). The application of a multi-method provenance approach has been essential in constraining the formation and evolution of the northern Yukon–Koyukuk Basin. This is of significant importance for advancing the understanding of Alaskan geology and for providing insights into modern basins within analogous tectonic settings, such as the Banda Arc in Southeast Asia.

Place, publisher, year, edition, pages
2025. Vol. 72, no 2, p. 666-687
Keywords [en]
Arc–continent collision, heavy minerals, provenance studies, sedimentology, U–Pb dating, Yukon–Koyukuk Basin
National Category
Geology
Identifiers
URN: urn:nbn:se:su:diva-219284DOI: 10.1111/sed.13248ISI: 001368048200001Scopus ID: 2-s2.0-85211165851OAI: oai:DiVA.org:su-219284DiVA, id: diva2:1783544
Available from: 2023-07-21 Created: 2023-07-21 Last updated: 2025-10-17Bibliographically approved
In thesis
1. Formation and tectonic evolution of the Yukon-Koyukuk Basin, Alaska
Open this publication in new window or tab >>Formation and tectonic evolution of the Yukon-Koyukuk Basin, Alaska
2025 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

The Yukon-Koyukuk Basin (YKB) is a large wedge-shaped depression south of the Brooks Range orogen in Alaska. It consists of two sub-basins, the northern Kobuk-Koyukuk Basin and the southern Lower-Yukon Basin, separated by remnants of the Koyukuk Arc Terrane. In the Late Jurassic, this arc began colliding with the Arctic Alaska continental margin, resulting in Brookian orogeny. Hypotheses for YKB formation vary from a forearc-backarc setting to formation during post-collisional lithospheric extension of the Brookian hinterland. Although this point remains debated, part of YKB development is clearly related to Brookian orogenesis. While the beginning of the collision is well constrained by synorogenic deposits on the northern side of the Brooks Range, the evolution of the YKB remains unclear. To test which model best describes basin formation and to better assess basin evolution, this thesis investigates the sedimentary units deposited within it. Sediments are effective in recording orogenic evolution, documenting progressive mountain belt denudation, linking erosional detritus to distinctive source areas, constraining depositional ages through U-Pb mineral dating, and more.

This PhD thesis characterizes YKB sedimentary units using point counting of framework grains (quartz, feldspars, lithics) in thin section to determine composition, degree of transport, and maturity, and, together with new paleocurrent data, defines sediment dispersal patterns. Heavy mineral analysis further refines provenance and associated source regions. U-Pb analyses of volcanic and detrital zircons provide absolute age constraints and define shifts in sediment supply from early volcanic- to later metamorphic-dominated input. Zircon trace element chemistry provides insight into magmatic sources and allows evaluation of tectonic environments in which magmas formed.

Integrated data suggest active sedimentation of deposits with distinct volcanic input characterized by strong continental contribution at ~138 Ma (Valanginian), consistent with the forearc-backarc model rather than the extensional scenario. This was followed in the late Early Cretaceous (~112 Ma, Albian) by deep-marine turbiditic deposits with strong metamorphic input from the surrounding highlands, later overlain by more proximal conglomeratic deposits at ~100 Ma. During the Late Cretaceous, inferred east-west convergence between the North American and Eurasian plates possibly caused additional uplift of the Ruby Terrane. Its enhanced erosion marked a major provenance shift, with sediment supply moving from the Brooks Range in the northern Kobuk-Koyukuk Basin to the Ruby Terrane in the southern Kobuk-Koyukuk Basin and eastern Lower-Yukon Basin. Increased Ruby Terrane uplift further confined the southern Kobuk-Koyukuk Basin, resulting in rapid infill and deposition of fluvio-deltaic deposits. In addition, a structurally controlled valley cutting across the Koyukuk Arc Terrane funnelled sediment to the backarc basin, leading to the deposition of slurry beds and directly connecting the forearc and backarc domains.

Comparisons with modern systems such as the Banda Arc-Timor and Luzon Arc-Taiwan highlight strong similarities in tectonic setting, metamorphic grade, volcanic geochemistry, and basin stratigraphy. These parallels improve understanding of sedimentary basins formed in arc-continent collisional settings, providing fundamental insights for refining models of their formation and evolution.

Place, publisher, year, edition, pages
Stockholm: Department of Geological Sciences, Stockholm University, 2025. p. 39
Series
Meddelanden från Stockholms universitets institution för geologiska vetenskaper ; 396
Keywords
arc-continent collision, U-Pb dating, heavy mineral, trace element, Yukon-Koyukuk Basin, sedimentology
National Category
Geology
Research subject
Geology
Identifiers
urn:nbn:se:su:diva-248154 (URN)978-91-8107-414-7 (ISBN)978-91-8107-415-4 (ISBN)
Public defence
2025-12-03, William-Olsson, Geovetenskapens Hus, Svante Arrhenius väg 14, Stockholm, 09:30 (English)
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Supervisors
Available from: 2025-11-10 Created: 2025-10-14 Last updated: 2025-11-03Bibliographically approved

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Seminara, SimonePease, Victoria

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