Calcareous Nannofossils and Paleoclimatic Evolution Across the Eocene‐Oligocene Transition at IODP Site U1509, Tasman Sea, Southwest Pacific Ocean

IF 4.7 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2024-02-01 DOI:10.1029/2023pa004738
A. Viganò, E. Dallanave, L. Alegret, T. Westerhold, R. Sutherland, G. Dickens, C. Newsam, C. Agnini
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Abstract

The Eocene‐Oligocene transition (EOT; ∼34 Ma) was one of the most prominent global cooling events of the Cenozoic, coincident with the emergence of continental‐scale ice‐sheets on Antarctica. Calcareous nannoplankton experienced significant assemblage turnover at a time of long‐term surface ocean cooling and trophic conditions, suggesting cause‐effect relationships between Antarctic glaciation, broader climate changes, and the response of phytoplankton communities. To better evaluate the timing and nature of these relationships, we generated calcareous nannofossil and geochemical data sets (δ18O, δ13C and %CaCO3) over a ∼5 Myr stratigraphic interval recovered across the EOT from IODP Site U1509 in the Tasman Sea, South Pacific Ocean. Based on trends observed in the calcareous nannofossil assemblages, there was an overall decline of warm‐oligotrophic communities, with a shift toward taxa better adapted to cooler more eutrophic conditions. Assemblage changes indicate four distinct phases caused by temperature decrease and variations in paleocurrents: late Eocene warm‐oligotrophic phase, precursor diversity‐decrease phase, early Oligocene cold‐eutrophic phase, and a steady‐state cosmopolitan phase. The most prominent shift in the assemblages occurred during the ∼550 kyr‐long precursor diversity‐decrease phase, which has relatively high bulk δ18O and %CaCO3 values, and predates the phase of maximum glacial expansion (Earliest Oligocene Glacial Maximum–EOGM).
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西南太平洋塔斯曼海 IODP U1509 号地点的钙质化石和始新世-远古新世过渡时期的古气候演变
始新世-更新世过渡(EOT;∼34 Ma)是新生代最突出的全球变冷事件之一,与南极洲大陆尺度冰盖的出现相吻合。在表层海洋长期变冷和营养条件发生变化的时期,钙质浮游植物经历了显著的群落更替,这表明南极冰川作用、更广泛的气候变化和浮游植物群落的反应之间存在因果关系。为了更好地评估这些关系的时间和性质,我们生成了钙质化石和地球化学数据集(δ18O、δ13C和%CaCO3),这些数据集来自南太平洋塔斯曼海的IODP U1509站点,覆盖了整个EOT的5 Myr地层区间。根据在钙质化石组合中观察到的趋势,暖-寡营养群落总体上有所衰退,而向更适应较冷的富营养化条件的类群转变。生物群落的变化表明,温度下降和古海流的变化造成了四个不同的阶段:晚始新世暖-寡养阶段、前身多样性减少阶段、早渐新世冷-富养阶段和稳定的世界性阶段。在长达 550 千年的前体多样性减少阶段,集合体发生了最显著的变化,该阶段的体积δ18O 和 CaCO3 含量相对较高,并且早于冰川扩张最大阶段(最早渐新世冰川最大值-EOGM)。
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来源期刊
CiteScore
7.20
自引率
4.30%
发文量
567
期刊介绍: ACS Applied Electronic Materials is an interdisciplinary journal publishing original research covering all aspects of electronic materials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials science, engineering, optics, physics, and chemistry into important applications of electronic materials. Sample research topics that span the journal's scope are inorganic, organic, ionic and polymeric materials with properties that include conducting, semiconducting, superconducting, insulating, dielectric, magnetic, optoelectronic, piezoelectric, ferroelectric and thermoelectric. Indexed/​Abstracted: Web of Science SCIE Scopus CAS INSPEC Portico
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