TY - JOUR
T1 - Southern Asian arc magmatism drove Eocene global climate
AU - Zhang, Xiaoran
AU - Xue, Shuiyue
AU - Chung, Sun Lin
AU - Zhao, Guochun
AU - Lai, Yu Ming
AU - Lee, Hao Yang
AU - Liu, Ping Ping
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/7
Y1 - 2026/7
N2 - Substantial evidence supports plate tectonics as a primary driver of Cenozoic paleoclimate evolution, with southern Asian (or Neo-Tethyan) magmatic pulses closely coinciding with the Early Eocene Climatic Optimum (EECO; ⁓53–49 Ma). However, the driving mechanism for the subsequent (⁓49–34 Ma) long-term global cooling remains contentious. Here, we synthesized available magmatic and detrital records across southern Asia, integrating a global radiometric dataset and a newly reconstructed, robust uplift history for the Tibetan Plateau (TP). Our synthesis, in conjunction with previous investigations, reveals a widespread magmatic lull, including a waning phase (⁓49–45 Ma) followed by a shutdown phase (⁓45–32 Ma), throughout southern Asia that probably resulted from coupled flat subduction of the Indo-Australian plate. We demonstrate that early Eocene magmatic flare-ups in southern Asia correlate with the atmospheric CO2 buildup during ⁓60–50 Ma, ultimately triggering the EECO, whereas the subsequent magmatic lull strikingly coincides temporally with the secular decline in atmospheric CO2 and global cooling. This long-term (⁓60–32 Ma) close correlation is not captured by models invoking TP uplift or enhanced tropical chemical weathering as primary driver of global cooling. These strong systematic covariations, as further supported by CO₂ flux calculations of the Linzizong volcanics and geochemical modeling of Neo-Tethyan CO₂ outgassing flux, compel us to propose that southern Asian arc magmatism (i.e., flare-ups and lull) may be the first-order control on Eocene global climate fluctuations, with the widespread magmatic lull and topographic weathering serving as the principal tectonic driver of post-EECO atmospheric CO2 drawdown and resultant global cooling.
AB - Substantial evidence supports plate tectonics as a primary driver of Cenozoic paleoclimate evolution, with southern Asian (or Neo-Tethyan) magmatic pulses closely coinciding with the Early Eocene Climatic Optimum (EECO; ⁓53–49 Ma). However, the driving mechanism for the subsequent (⁓49–34 Ma) long-term global cooling remains contentious. Here, we synthesized available magmatic and detrital records across southern Asia, integrating a global radiometric dataset and a newly reconstructed, robust uplift history for the Tibetan Plateau (TP). Our synthesis, in conjunction with previous investigations, reveals a widespread magmatic lull, including a waning phase (⁓49–45 Ma) followed by a shutdown phase (⁓45–32 Ma), throughout southern Asia that probably resulted from coupled flat subduction of the Indo-Australian plate. We demonstrate that early Eocene magmatic flare-ups in southern Asia correlate with the atmospheric CO2 buildup during ⁓60–50 Ma, ultimately triggering the EECO, whereas the subsequent magmatic lull strikingly coincides temporally with the secular decline in atmospheric CO2 and global cooling. This long-term (⁓60–32 Ma) close correlation is not captured by models invoking TP uplift or enhanced tropical chemical weathering as primary driver of global cooling. These strong systematic covariations, as further supported by CO₂ flux calculations of the Linzizong volcanics and geochemical modeling of Neo-Tethyan CO₂ outgassing flux, compel us to propose that southern Asian arc magmatism (i.e., flare-ups and lull) may be the first-order control on Eocene global climate fluctuations, with the widespread magmatic lull and topographic weathering serving as the principal tectonic driver of post-EECO atmospheric CO2 drawdown and resultant global cooling.
KW - Arc magmatism
KW - EECO
KW - Eocene Global cooling
KW - Southern Asia
UR - https://www.scopus.com/pages/publications/105035163763
UR - https://www.scopus.com/pages/publications/105035163763#tab=citedBy
U2 - 10.1016/j.gloplacha.2026.105474
DO - 10.1016/j.gloplacha.2026.105474
M3 - Article
AN - SCOPUS:105035163763
SN - 0921-8181
VL - 262
JO - Global and Planetary Change
JF - Global and Planetary Change
M1 - 105474
ER -